Methods and apparatus for lancet actuation
Summary by NHIP
Adaptive Lancet Driver
The apparatus advances a lancet while a processor adjusts force direction and magnitude based on user data. A pressure sensor at the tissue interface surface records pressure profiles to construct individual user profiles stored in memory for optimizing subsequent lancing cycles.
Claim Score by NHIP
Abstract
A lancet driver is provided wherein the driver exerts a driving force on a lancet during a lancing cycle and is used on a tissue site. The driver comprises of a drive force generator for advancing the lancet and a processor coupled to the drive force generator capable of changing the direction and magnitude of force exerted on the lancet during the lancing cycle. The driver further includes a human interface on the housing providing at least one output for communicating with the patient.

Term
Term ended
Expired 19 July 2024, 2.2 years ago.
- Priority
- Filed
- Granted
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- Today
43 claims: 1 independent, 42 dependent
- 1Broadest claimClaim Score 57, broad(NHIP)A body fluid sampling apparatus, comprising:a housing including a tissue interface surface;a penetrating member;a sampling chamber coupled to the penetrating member, the sampling chamber positioned to receive a body fluid from a tissue site in response to penetration of the tissue site by the penetrating member;resources including a database that includes profiles of users a pressure sensor positioned at the tissue interface surface for sensing and recording a pressure profile of a user;and wherein a processor is provided that stores results and constructs the database for an individual user, the processor using the database to calculate profile traits of the user to optimize a user's profile for subsequent lancing cycles.
448 paragraphs in 5 sections, as filed
CROSS-REFERENCE TO RELATED APPLICATIONS
0001The present application is a divisional of U.S. Ser. No. 11/735,817, filed Apr. 16, 2007, which is a continuation of U.S. Ser. No. 10/237,261 now U.S. Pat. No. 7,344,507, which is a continuation-in-part of 10/127,395 filed Apr. 19, 2002 now U.S. Pat. No. 7,025,774. The complete disclosure of all applications listed above are incorporated herein by reference for all purposes.
BACKGROUND OF THE INVENTION
0002Lancing devices are known in the medical health-care products industry for piercing the skin to produce blood for analysis. Biochemical analysis of blood samples is a diagnostic tool for determining clinical information. Many point-of-care tests are performed using whole blood, the most common being monitoring diabetic blood glucose level. Other uses for this method include the analysis of oxygen and coagulation based on Prothrombin time measurement. Typically, a drop of blood for this type of analysis is obtained by making a small incision in the fingertip, creating a small wound, which generates a small blood droplet on the surface of the skin.
0003Early methods of lancing included piercing or slicing the skin with a needle or razor. Current methods utilize lancing devices that contain a multitude of spring, cam and mass actuators to drive the lancet. These include cantilever springs, diaphragms, coil springs, as well as gravity plumbs used to drive the lancet. Typically, the device is pre-cocked or the user cocks the device. The device is held against the skin and the user, or pressure from the users skin, mechanically triggers the ballistic launch of the lancet. The forward movement and depth of skin penetration of the lancet is determined by a mechanical stop and/or dampening, as well as a spring or cam to retract the lancet. Such devices have the possibility of multiple strikes due to recoil, in addition to vibratory stimulation of the skin as the driver impacts the end of the launcher stop, and only allow for rough control for skin thickness variation. Different skin thickness may yield different results in terms of pain perception, blood yield and success rate of obtaining blood between different users of the lancing device.
0004Success rate generally encompasses the probability of producing a blood sample with one lancing action, which is sufficient in volume to perform the desired analytical test. The blood may appear spontaneously at the surface of the skin, or may be “milked” from the wound. Milking generally involves pressing the side of the digit, or in proximity of the wound to express the blood to the surface. In traditional methods, the blood droplet produced by the lancing action must reach the surface of the skin to be viable for testing.
0005When using existing methods, blood often flows from the cut blood vessels but is then trapped below the surface of the skin, forming a hematoma. In other instances, a wound is created, but no blood flows from the wound. In either case, the lancing process cannot be combined with the sample acquisition and testing step. Spontaneous blood droplet generation with current mechanical launching system varies between launcher types but on average it is about 50% of lancet strikes, which would be spontaneous. Otherwise milking is required to yield blood. Mechanical launchers are unlikely to provide the means for integrated sample acquisition and testing if one out of every two strikes does not yield a spontaneous blood sample.
0006Many diabetic patients (insulin dependent) are required to self-test for blood glucose levels five to six times daily. The large number of steps required in traditional methods of glucose testing ranging from lancing, to milking of blood, applying blood to the test strip, and getting the measurements from the test strip discourages many diabetic patients from testing their blood glucose levels as often as recommended. Tight control of plasma glucose through frequent testing is therefore mandatory for disease management. The pain associated with each lancing event further discourages patients from testing. Additionally, the wound channel left on the patient by known systems may also be of a size that discourages those who are active with their hands or who are worried about healing of those wound channels from testing their glucose levels.
0007Another problem frequently encountered by patients who must use lancing equipment to obtain and analyze blood samples is the amount of manual dexterity and hand-eye coordination required to properly operate the lancing and sample testing equipment due to retinopathies and neuropathies particularly, severe in elderly diabetic patients. For those patients, operating existing lancet and sample testing equipment can be a challenge. Once a blood droplet is created, that droplet must then be guided into a receiving channel of a small test strip or the like. If the sample placement on the strip is unsuccessful, repetition of the entire procedure including re-lancing the skin to obtain a new blood droplet is necessary.
SUMMARY OF THE INVENTION
0008In one aspect of the present invention, a lancet driver is configured to exert a driving force on a lancet during a lancing cycle and is used on a tissue site. The driver comprises of a drive force generator for advancing the lancet along a path into the tissue site, and a sensor configured to detect lancet position along the path during the lancing cycle.
0009In one embodiment of the present invention, a lancet driver is configured to exert a driving force on a lancet and to be used at a tissue site during a lancing cycle. The driver comprises of a voice-coil, drive force generator, a processor coupled to the drive force generator capable of changing the direction and magnitude of force exerted on the lancet during the lancing cycle, and a position sensor configured to detect lancet position during the lancing cycle. Although not limited to the following, the voice coil may be a cylindrical coil that goes around the magnet. The voice coil generator may be linear with a flat coil.
0010In another embodiment of the present invention, a lancet driver is configured to exert a driving force on a lancet during a lancing cycle and to be used on a tissue site. The driver comprises of a voice-coil, drive force generator and a processor coupled to the drive force generator capable of changing the direction and magnitude of force exerted on the lancet during the lancing cycle. The processor actuates the drive force generator to drive the lancet at velocities in time that follow a selectable lancing velocity profile.
0011In a further embodiment of the present invention, a lancet driver is configured to exert a driving force on a lancet during a lancing cycle and used on a tissue site. The driver comprises of a housing, a drive force generator; and a processor coupled to the drive force generator capable of changing the direction and magnitude of force exerted on the lancet during the lancing cycle. The driver further includes a position sensor configured to detect lancet position during the lancing cycle and a human interface on the housing providing at least one output.
0012In a still further embodiment of the present invention, a body fluid sampling device is configured to exert a driving force on a lancet during a lancing cycle and used on a tissue site. The device comprises of a drive force generator suitable for actuating the lancet along a path towards the tissue site, into the tissue site, and then back out of the tissue site. The lancet penetrates to a depth in the tissue site sufficient to draw body fluid from the tissue site for sampling. The device further includes a closed feedback control loop for controlling the drive force generator based on position and velocity of the lancet.
0013In another embodiment of the present invention, a body fluid sampling device is provided for use at a tissue site on a patient. The device comprises a drive force generator; a processor coupled to the drive force generator capable of changing the direction and magnitude of force exerted on the lancet during the lancing cycle, and a position sensor configured to detect lancet position during the lancing cycle. The drive force generator actuates the lancet along a one directional, linear path towards the tissue site, into the tissue site, and then back out of the tissue site. The lancet penetrates to a depth in the tissue site and pauses for a controlled dwell time while in the tissue site. The dwell time may be sufficient to draw body fluid toward a wound channel created by said lancet.
0014In another embodiment of the present invention, a body fluid sampling device is provided for use at a tissue site on a patient. The device comprises a voice-coil, drive force generator and a processor coupled to the drive force generator capable of changing the direction and magnitude of force exerted on the lancet during the lancing cycle. The device further includes a position sensor configured to detect lancet position during the lancing cycle. The drive force generator has a magnetic member and a drive coil creating a magnetic field so that the drive coil magnetically attracts the magnetic member. The drive coil may be configured to only partially encircle said magnetic member.
0015In another embodiment of the present invention, a body fluid sampling device is provided for use at a tissue site on a patient. The device comprises of a voice-coil, drive force generator and a processor coupled to the drive force generator capable of changing the direction and magnitude of force exerted on the lancet during the lancing cycle. The device further includes a position sensor configured to detect lancet position during the lancing cycle and a mechanical damper disposed to minimize oscillation of the lancet in the tissue site when the lancet reaches an end point of its penetration stroke into the tissue site.
0016In another embodiment of the present invention, a body fluid sampling device is provided for use on a tissue site. The device further includes a voice-coil, drive force generator and a processor coupled to the drive force generator capable of changing the direction and magnitude of force exerted on the lancet during the lancing cycle. The device may also include a position sensor configured to detect lancet position during the lancing cycle and a lancet coupler for removably coupling the lancet to said drive force generator.
0017In another embodiment of the present invention, a body fluid sampling device is provided for use on a tissue site. The device comprises of a housing, a drive force generator, and a processor coupled to the drive force generator capable of changing the direction and magnitude of force exerted on the lancet during the lancing cycle. The device may further include a position sensor configured to detect lancet position during the lancing cycle, a human interface, or possibly include a glucose analyzing device coupled to said housing. The housing and all elements therein have a combined weight of less than about 0.5 lbs.
0018In another aspect of the present invention, a method is provided for sampling body fluid from a tissue site. The method comprises driving a lancet along a path into the tissue site and using a sensor to detect lancet position along said path into the tissue site. The method may further include stopping the lancet in said tissue site for a controlled dwell time to allow body fluid to gather. In a still further embodiment of the present invention, the method may comprise of driving a lancet along a path into the tissue site using closed loop feedback to control lancet velocity to follow a selectable lancing velocity profile.
0019In another embodiment of the present invention, a method is provided for sampling body fluids from a patient. The method comprises using a human interface on a lancet driver to communicate information to the patient and actuating the lancet driver to drive a lancet into the patient in a manner sufficient to obtain the body fluid sample. The human interface may be electrically powered, dynamically changeable (to provide different signals), or be human readable. The human interface may also be used to display current status of a lancet driver or other information.
0020A further understanding of the nature and advantages of the invention will become apparent by reference to the remaining portions of the specification and drawings.
BRIEF DESCRIPTION OF THE DRAWINGS
0021<figref idref="DRAWINGS">FIGS. 1-3</figref> are graphs of lancet velocity versus position for embodiments of spring driven, cam driven, and controllable force drivers.
0022<figref idref="DRAWINGS">FIG. 4</figref> illustrates an embodiment of a controllable force driver in the form of a flat electric lancet driver that has a solenoid-type configuration.
0023<figref idref="DRAWINGS">FIG. 5</figref> illustrates an embodiment of a controllable force driver in the form of a cylindrical electric lancet driver using a coiled solenoid-type configuration.
0024<figref idref="DRAWINGS">FIG. 6</figref> illustrates a displacement over time profile of a lancet driven by a harmonic spring/mass system.
0025<figref idref="DRAWINGS">FIG. 7</figref> illustrates the velocity over time profile of a lancet driver by a harmonic spring/mass system.
0026<figref idref="DRAWINGS">FIG. 8</figref> illustrates a displacement over time profile of an embodiment of a controllable force driver.
0027<figref idref="DRAWINGS">FIG. 9</figref> illustrates a velocity over time profile of an embodiment of a controllable force driver.
0028<figref idref="DRAWINGS">FIG. 10</figref> illustrates the lancet needle partially retracted, after severing blood vessels; blood is shown following the needle in the wound tract.
0029<figref idref="DRAWINGS">FIG. 11</figref> illustrates blood following the lancet needle to the skin surface, maintaining an open wound tract.
0030<figref idref="DRAWINGS">FIG. 12</figref> is a diagrammatic view illustrating a controlled feed-back loop.
0031<figref idref="DRAWINGS">FIG. 13</figref> is a graph of force vs. time during the advancement and retraction of a lancet showing some characteristic phases of a lancing cycle.
0032<figref idref="DRAWINGS">FIG. 14</figref> illustrates a lancet tip showing features, which can affect lancing pain, blood volume, and success rate.
0033<figref idref="DRAWINGS">FIG. 15</figref> illustrates an embodiment of a lancet tip.
0034<figref idref="DRAWINGS">FIG. 16</figref> is a graph showing displacement of a lancet over time.
0035<figref idref="DRAWINGS">FIG. 17</figref> is a graph showing an embodiment of a velocity profile, which includes the velocity of a lancet over time including reduced velocity during retraction of the lancet.
0036<figref idref="DRAWINGS">FIG. 18</figref> illustrates the tip of an embodiment of a lancet before, during and after the creation of an incision braced with a helix.
0037<figref idref="DRAWINGS">FIG. 19</figref> illustrates a finger wound tract braced with an elastomer embodiment.
0038<figref idref="DRAWINGS">FIG. 20</figref> is a perspective view of a tissue penetration device having features of the invention.
0039<figref idref="DRAWINGS">FIG. 21</figref> is an elevation view in partial longitudinal section of the tissue penetration device of <figref idref="DRAWINGS">FIG. 20</figref>.
0040<figref idref="DRAWINGS">FIG. 22</figref> is an elevation view in partial section of an alternative embodiment.
0041<figref idref="DRAWINGS">FIG. 23</figref> is a transverse cross sectional view of the tissue penetration device of <figref idref="DRAWINGS">FIG. 21</figref> taken along lines <b>23</b>-<b>23</b> of <figref idref="DRAWINGS">FIG. 21</figref>.
0042<figref idref="DRAWINGS">FIG. 24</figref> is a transverse cross sectional view of the tissue penetration device of <figref idref="DRAWINGS">FIG. 21</figref> taken along lines <b>24</b>-<b>24</b> of <figref idref="DRAWINGS">FIG. 21</figref>.
0043<figref idref="DRAWINGS">FIG. 25</figref> is a transverse cross sectional view of the tissue penetration device of <figref idref="DRAWINGS">FIG. 21</figref> taken along lines <b>25</b>-<b>25</b> of <figref idref="DRAWINGS">FIG. 21</figref>.
0044<figref idref="DRAWINGS">FIG. 26</figref> is a transverse cross sectional view of the tissue penetration device of <figref idref="DRAWINGS">FIG. 21</figref> taken along lines <b>26</b>-<b>26</b> of <figref idref="DRAWINGS">FIG. 21</figref>.
0045<figref idref="DRAWINGS">FIG. 27</figref> is a side view of the drive coupler of the tissue penetration device of <figref idref="DRAWINGS">FIG. 21</figref>.
0046<figref idref="DRAWINGS">FIG. 28</figref> is a front view of the drive coupler of the tissue penetration device of <figref idref="DRAWINGS">FIG. 21</figref> with the lancet not shown for purposes of illustration.
0047<figref idref="DRAWINGS">FIGS. 29A-29C</figref> show a flowchart illustrating a lancet control method.
0048<figref idref="DRAWINGS">FIG. 30</figref> is a diagrammatic view of a patient's finger and a lancet tip moving toward the skin of the finger.
0049<figref idref="DRAWINGS">FIG. 31</figref> is a diagrammatic view of a patient's finger and the lancet tip making contact with the skin of a patient's finger.
0050<figref idref="DRAWINGS">FIG. 32</figref> is a diagrammatic view of the lancet tip depressing the skin of a patient's finger.
0051<figref idref="DRAWINGS">FIG. 33</figref> is a diagrammatic view of the lancet tip further depressing the skin of a patient's finger.
0052<figref idref="DRAWINGS">FIG. 34</figref> is a diagrammatic view of the lancet tip penetrating the skin of a patient's finger.
0053<figref idref="DRAWINGS">FIG. 35</figref> is a diagrammatic view of the lancet tip penetrating the skin of a patient's finger to a desired depth.
0054<figref idref="DRAWINGS">FIG. 36</figref> is a diagrammatic view of the lancet tip withdrawing from the skin of a patient's finger.
0055<figref idref="DRAWINGS">FIGS. 37-41</figref> illustrate a method of tissue penetration that may measure elastic recoil of the skin.
0056<figref idref="DRAWINGS">FIG. 42</figref> is a graphical representation of position and velocity vs. time for a lancing cycle.
0057<figref idref="DRAWINGS">FIG. 43</figref> illustrates a sectional view of the layers of skin with a lancet disposed therein.
0058<figref idref="DRAWINGS">FIG. 44</figref> is a graphical representation of velocity vs. position of a lancing cycle.
0059<figref idref="DRAWINGS">FIG. 45</figref> is a graphical representation of velocity vs. time of a lancing cycle.
0060<figref idref="DRAWINGS">FIG. 46</figref> is an elevation view in partial longitudinal section of an alternative embodiment of a driver coil pack and position sensor.
0061<figref idref="DRAWINGS">FIG. 47</figref> is a perspective view of a flat coil driver having features of the invention.
0062<figref idref="DRAWINGS">FIG. 48</figref> is an exploded view of the flat coil driver of <figref idref="DRAWINGS">FIG. 47</figref>.
0063<figref idref="DRAWINGS">FIG. 49</figref> is an elevational view in partial longitudinal section of a tapered driver coil pack having features of the invention.
0064<figref idref="DRAWINGS">FIG. 50</figref> is a transverse cross sectional view of the tapered coil driver pack of <figref idref="DRAWINGS">FIG. 49</figref> taken along lines <b>50</b>-<b>50</b> in <figref idref="DRAWINGS">FIG. 49</figref>.
0065<figref idref="DRAWINGS">FIG. 51</figref> shows an embodiment of a sampling module which houses a lancet and sample reservoir.
0066<figref idref="DRAWINGS">FIG. 52</figref> shows a housing that includes a driver and a chamber where the module shown in <figref idref="DRAWINGS">FIG. 51</figref> can be loaded.
0067<figref idref="DRAWINGS">FIG. 53</figref> shows a tissue penetrating sampling device with the module loaded into the housing.
0068<figref idref="DRAWINGS">FIG. 54</figref> shows an alternate embodiment of a lancet configuration.
0069<figref idref="DRAWINGS">FIG. 55</figref> illustrates an embodiment of a sample input port, sample reservoir and ergonomically contoured finger contact area.
0070<figref idref="DRAWINGS">FIG. 56</figref> illustrates the tissue penetration sampling device during a lancing event.
0071<figref idref="DRAWINGS">FIG. 57</figref> illustrates a thermal sample sensor having a sample detection element near a surface over which a fluid may flow and an alternative position for a sampled detection element that would be exposed to a fluid flowing across the surface.
0072<figref idref="DRAWINGS">FIG. 58</figref> shows a configuration of a thermal sample sensor with a sample detection element that includes a separate heating element.
0073<figref idref="DRAWINGS">FIG. 59</figref> depicts three thermal sample detectors such as that shown in <figref idref="DRAWINGS">FIG. 58</figref> with sample detection elements located near each other alongside a surface.
0074<figref idref="DRAWINGS">FIG. 60</figref> illustrates thermal sample sensors positioned relative to a channel having an analysis site.
0075<figref idref="DRAWINGS">FIG. 61</figref> shows thermal sample sensors with sample detection analyzers positioned relative to analysis sites arranged in an array on a surface.
0076<figref idref="DRAWINGS">FIG. 62</figref> schematically illustrates a sampling module device including several possible configurations of thermal sample sensors including sample detection elements positioned relative to sample flow channels and analytical regions.
0077<figref idref="DRAWINGS">FIG. 63</figref> illustrates a tissue penetration sampling device having features of the invention.
0078<figref idref="DRAWINGS">FIG. 64</figref> is a top view in partial section of a sampling module of the tissue penetration sampling device of <figref idref="DRAWINGS">FIG. 63</figref>.
0079<figref idref="DRAWINGS">FIG. 65</figref> is a cross sectional view through line <b>65</b>-<b>65</b> of the sampling module shown in <figref idref="DRAWINGS">FIG. 64</figref>.
0080<figref idref="DRAWINGS">FIG. 66</figref> schematically depicts a sectional view of an alternative embodiment of the sampling module.
0081<figref idref="DRAWINGS">FIG. 67</figref> depicts a portion of the sampling module surrounding a sampling port.
0082<figref idref="DRAWINGS">FIGS. 68-70</figref> show in sectional view one implementation of a spring powered lancet driver in three different positions during use of the lancet driver.
0083<figref idref="DRAWINGS">FIG. 71</figref> illustrates an embodiment of a tissue penetration sampling device having features of the invention.
0084<figref idref="DRAWINGS">FIG. 72</figref> shows a top surface of a cartridge that includes multiple sampling modules.
0085<figref idref="DRAWINGS">FIG. 73</figref> shows in partial section a sampling module of the sampling cartridge positioned in a reader device.
0086<figref idref="DRAWINGS">FIG. 74</figref> is a perspective view in partial section of a tissue penetration sampling device with a cartridge of sampling modules.
0087<figref idref="DRAWINGS">FIG. 75</figref> is a front view in partial section of the tissue penetration sampling device of <figref idref="DRAWINGS">FIG. 56</figref>.
0088<figref idref="DRAWINGS">FIG. 76</figref> is a top view of the tissue penetration sampling device of <figref idref="DRAWINGS">FIG. 75</figref>.
0089<figref idref="DRAWINGS">FIG. 77</figref> is a perspective view of a section of a sampling module belt having a plurality of sampling modules connected in series by a sheet of flexible polymer.
0090<figref idref="DRAWINGS">FIG. 78</figref> is a perspective view of a single sampling module of the sampling module belt of <figref idref="DRAWINGS">FIG. 59</figref>.
0091<figref idref="DRAWINGS">FIG. 79</figref> is a bottom view of a section of the flexible polymer sheet of the sampling module of <figref idref="DRAWINGS">FIG. 78</figref> illustrating the flexible conductors and contact points deposited on the bottom surface of the flexible polymer sheet.
0092<figref idref="DRAWINGS">FIG. 80</figref> is a perspective view of the body portion of the sampling module of <figref idref="DRAWINGS">FIG. 77</figref> without the flexible polymer cover sheet or lancet.
0093<figref idref="DRAWINGS">FIG. 81</figref> is an enlarged portion of the body portion of the sampling module of <figref idref="DRAWINGS">FIG. 80</figref> illustrating the input port, sample flow channel, analytical region, lancet channel and lancet guides of the sampling module.
0094<figref idref="DRAWINGS">FIG. 82</figref> is an enlarged elevational view of a portion of an alternative embodiment of a sampling module having a plurality of small volume analytical regions.
0095<figref idref="DRAWINGS">FIG. 83</figref> is a perspective view of a body portion of a lancet module that can house and guide a lancet without sampling or analytical functions.
0096<figref idref="DRAWINGS">FIG. 84</figref> is an elevational view of a drive coupler having a T-slot configured to accept a drive head of a lancet.
0097<figref idref="DRAWINGS">FIG. 85</figref> is an elevational view of the drive coupler of <figref idref="DRAWINGS">FIG. 84</figref> from the side and illustrating the guide ramps of the drive coupler.
0098<figref idref="DRAWINGS">FIG. 86</figref> is a perspective view of the drive coupler of <figref idref="DRAWINGS">FIG. 84</figref> with a lancet being loaded into the T-slot of the drive coupler.
0099<figref idref="DRAWINGS">FIG. 87</figref> is a perspective view of the drive coupler of <figref idref="DRAWINGS">FIG. 86</figref> with the drive head of the lancet completely loaded into the T-slot of the drive coupler.
0100<figref idref="DRAWINGS">FIG. 88</figref> is a perspective view of a sampling module belt disposed within the T-slot of the drive coupler with a drive head of a lancet of one of the sampling modules loaded within the T-slot of the drive coupler.
0101<figref idref="DRAWINGS">FIG. 89</figref> is a perspective view of a sampling module cartridge with the sampling modules arranged in a ring configuration.
0102<figref idref="DRAWINGS">FIG. 90</figref> is a perspective view of a sampling module cartridge with the plurality of sampling modules arranged in a block matrix with lancet drive heads configured to mate with a drive coupler having adhesive coupling.
0103<figref idref="DRAWINGS">FIG. 91</figref> is a side view of an alternative embodiment of a drive coupler having a lateral slot configured to accept the L-shaped drive head of the lancet that is disposed within a lancet module and shown with the L-shaped drive head loaded in the lateral slot.
0104<figref idref="DRAWINGS">FIG. 92</figref> is an exploded view of the drive coupler, lancet with L-shaped drive head and lancet module of <figref idref="DRAWINGS">FIG. 91</figref>.
0105<figref idref="DRAWINGS">FIG. 93</figref> is a perspective view of the front of a lancet cartridge coupled to the distal end of a controlled electromagnetic driver.
0106<figref idref="DRAWINGS">FIG. 94</figref> is an elevational front view of the lancet cartridge of <figref idref="DRAWINGS">FIG. 93</figref>.
0107<figref idref="DRAWINGS">FIG. 95</figref> is a top view of the lancet cartridge of <figref idref="DRAWINGS">FIG. 93</figref>.
0108<figref idref="DRAWINGS">FIG. 96</figref> is a perspective view of the lancet cartridge of <figref idref="DRAWINGS">FIG. 93</figref> with a portion of the cartridge body and lancet receptacle not shown for purposes of illustration of the internal mechanism.
0109<figref idref="DRAWINGS">FIGS. 97-101</figref> illustrate an embodiment of an agent injection device.
0110<figref idref="DRAWINGS">FIGS. 102-106</figref> illustrate an embodiment of a cartridge for use in sampling having a sampling cartridge body and a lancet cartridge body.
0111<figref idref="DRAWINGS">FIG. 107</figref> is a schematic showing a lancet driver having a driver force generator and a sensor according to the present invention.
0112<figref idref="DRAWINGS">FIG. 108</figref> is a schematic showing one embodiment of the lancet driver using closed loop control.
0113<figref idref="DRAWINGS">FIG. 109</figref> is a schematic showing one embodiment of the lancet driver using a damper.
0114<figref idref="DRAWINGS">FIGS. 110A and 110B</figref> show embodiments of the lancet driver for use with multiple lancets.
0115<figref idref="DRAWINGS">FIGS. 111-115</figref> illustrate embodiments of a lancet driver with a variety of different interface devices.
DESCRIPTION OF THE SPECIFIC EMBODIMENTS
0116Variations in skin thickness including the stratum corneum and hydration of the epidermis can yield different results between different users with existing tissue penetration devices, such as lancing devices wherein the tissue penetrating element of the tissue penetration device is a lancet. Many current devices rely on adjustable mechanical stops or damping, to control the lancet's depth of penetration.
0117Displacement velocity profiles for both spring driven and cam driven tissue penetration devices are shown in <figref idref="DRAWINGS">FIGS. 1 and 2</figref>, respectively. Velocity is plotted against displacement X of the lancet. <figref idref="DRAWINGS">FIG. 1</figref> represents a displacement/velocity profile typical of spring driven devices. The lancet exit velocity increases until the lancet hits the surface of the skin <b>10</b>. Because of the tensile characteristics of the skin, it will bend or deform until the lancet tip cuts the surface <b>20</b>, the lancet will then penetrate the skin until it reaches a full stop <b>30</b>. At this point displacement is maximal and reaches a limit of penetration and the lancet stops. Mechanical stops absorb excess energy from the driver and transfer it to the lancet. The energy stored in the spring can cause recoil resulting in multiple piercing as seen by the coiled profile in <figref idref="DRAWINGS">FIG. 1</figref>. This results in unnecessary pain from the additional tissue penetration as well as from transferring vibratory energy into the skin and exciting nerve endings. Retraction of the lancet then occurs and the lancet exits the skin <b>40</b> to return into the housing. Velocity cannot be controlled in any meaningful way for this type of spring-powered driver.
0118<figref idref="DRAWINGS">FIG. 2</figref> shows a displacement/velocity profile for a cam driven driver, which is similar to that of <figref idref="DRAWINGS">FIG. 1</figref>, but because the return path is specified in the cam configuration, there is no possibility of multiple tissue penetrations from one actuation. Cam based drivers can offer some level of control of lancet velocity vs. displacement, but not enough to achieve many desirable displacement/velocity profiles.
0119Advantages are achieved by utilizing a controllable force driver to drive a lancet, such as a driver, powered by electromagnetic energy. A controllable driver can achieve a desired velocity versus position profile, such as that shown in <figref idref="DRAWINGS">FIG. 3</figref>. Embodiments of the present invention allow for the ability to accurately control depth of penetration, to control lancet penetration and withdrawal velocity, and therefore reduce the pain perceived when cutting into the skin. Embodiments of the invention include a controllable driver that can be used with a feedback loop with a position sensor to control the power delivered to the lancet, which can optimize the velocity and displacement profile to compensate for variations in skin thickness
0120Pain reduction can be achieved by using a rapid lancet cutting speed, which is facilitated by the use of a lightweight lancet. The rapid cutting minimizes the shock waves produced when the lancet strikes the skin in addition to compressing the skin for efficient cutting. If a controllable driver is used, the need for a mechanical stop can be eliminated. Due to the very light mass of the lancet and lack of a mechanical stop, there is little or no vibrational energy transferred to the finger during cutting.
0121The lancing devices such as those whose velocity versus position profiles are shown in <figref idref="DRAWINGS">FIGS. 1 and 2</figref> typically yield 50% spontaneous blood. In addition, some lancing events are unsuccessful and yield no blood, even on milking the finger. A spontaneous blood droplet generation is dependent on reaching the blood capillaries and venuoles, which yield the blood sample. It is therefore an issue of correct depth of penetration of the cutting device. Due to variations in skin thickness and hydration, some types of skin will deform more before cutting starts, and hence the actual depth of penetration will be less, resulting in less capillaries and venuoles cut. A controllable force driver can control the depth of penetration of a lancet and hence improve the spontaneity of blood yield. Furthermore, the use of a controllable force driver can allow for slow retraction of the lancet (slower than the cutting velocity) resulting in improved success rate due to the would channel remaining open for the free passage of blood to the surface of the skin.
0122Spontaneous blood yield occurs when blood from the cut vessels flow up the wound tract to the surface of the skin, where it can be collected and tested. Tissue elasticity parameters may force the wound tract to close behind the retracting lancet preventing the blood from reaching the surface. If however, the lancet were to be withdrawn slowly from the wound tract, thus keeping the wound open, blood could flow up the patent channel behind the tip of the lancet as it is being withdrawn (ref. <figref idref="DRAWINGS">FIGS. 10 and 11</figref>). Hence the ability to control the lancet speed into and out of the wound allows the device to compensate for changes in skin thickness and variations in skin hydration and thereby achieves spontaneous blood yield with maximum success rate while minimizing pain.
0123An electromagnetic driver can be coupled directly to the lancet minimizing the mass of the lancet and allowing the driver to bring the lancet to a stop at a predetermined depth without the use of a mechanical stop. Alternatively, if a mechanical stop is required for positive positioning, the energy transferred to the stop can be minimized. The electromagnetic driver allows programmable control over the velocity vs. position profile of the entire lancing process including timing the start of the lancet, tracking the lancet position, measuring the lancet velocity, controlling the distal stop acceleration, and controlling the skin penetration depth.
0124Referring to <figref idref="DRAWINGS">FIG. 4</figref>, an embodiment of a tissue penetration device is shown. The tissue penetration device includes a controllable force driver in the form of an electromagnetic driver, which can be used to drive a lancet. The term Lancet, as used herein, generally includes any sharp or blunt member, preferably having a relatively low mass, used to puncture the skin for the purpose of cutting blood vessels and allowing blood to flow to the surface of the skin. The term Electromagnetic driver, as used herein, generally includes any device that moves or drives a tissue penetrating element, such as a lancet under an electrically or magnetically induced force. <figref idref="DRAWINGS">FIG. 4</figref> is a partially exploded view of an embodiment of an electromagnetic driver. The top half of the driver is shown assembled. The bottom half of the driver is shown exploded for illustrative purposes.
0125<figref idref="DRAWINGS">FIG. 4</figref> shows the inner insulating housing <b>22</b> separated from the stationary housing or PC board <b>20</b>, and the lancet <b>24</b> and flag <b>26</b> assembly separated from the inner insulating housing <b>22</b> for illustrative purposes. In addition, only four rivets <b>18</b> are shown as attached to the inner insulating housing <b>22</b> and separated from the PC board <b>20</b>. In an embodiment, each coil drive field core in the PC board located in the PC Board <b>20</b> and <b>30</b> is connected to the inner insulating housing <b>22</b> and <b>32</b> with rivets.
0126The electromagnetic driver has a moving part comprising a lancet assembly with a lancet <b>24</b> and a magnetically permeable flag <b>26</b> attached at the proximal or drive end and a stationary part comprising a stationary housing assembly with electric field coils arranged so that they produce a balanced field at the flag to reduce or eliminate any net lateral force on the flag. The electric field coils are generally one or more metal coils, which generate a magnetic field when electric current passes through the coil. The iron flag is a flat or enlarged piece of magnetic material, which increases the surface area of the lancet assembly to enhance the magnetic forces generated between the proximal end of the lancet and a magnetic field produced by the field coils. The combined mass of the lancet and the iron flag can be minimized to facilitate rapid acceleration for introduction into the skin of a patient, to reduce the impact when the lancet stops in the skin, and to facilitate prompt velocity profile changes throughout the sampling cycle.
0127The stationary housing assembly consists of a PC board <b>20</b>, a lower inner insulating housing <b>22</b>, an upper inner insulating housing <b>32</b>, an upper PC board <b>30</b>, and rivets <b>18</b> assembled into a single unit. The lower and upper inner insulating housing <b>22</b> and <b>32</b> are relieved to form a slot so that lancet assembly can be slid into the driver assembly from the side perpendicular to the direction of the lancet's advancement and retraction. This allows the disposal of the lancet assembly and reuse of the stationary housing assembly with another lancet assembly while avoiding accidental lancet launches during replacement.
0128The electric field coils in the upper and lower stationary housing <b>20</b> and <b>30</b> are fabricated in a multi-layer printed circuit (PC) board. They may also be conventionally wound wire coils. A Teflon® material, or other low friction insulating material is used to construct the lower and upper inner insulating housing <b>22</b> and <b>32</b>. Each insulating housing is mounted on the PC board to provide electrical insulation and physical protection, as well as to provide a low-friction guide for the lancet. The lower and upper inner insulating housing <b>22</b> and <b>32</b> provide a reference surface with a small gap so that the lancet assembly <b>24</b> and <b>26</b> can align with the drive field coils in the PC board for good magnetic coupling.
0129Rivets <b>18</b> connect the lower inner insulating housing <b>22</b> to the lower stationary housing <b>20</b> and are made of magnetically permeable material such as ferrite or steel, which serves to concentrate the magnetic field. This mirrors the construction of the upper inner insulating housing <b>32</b> and upper stationary housing <b>30</b>. These rivets form the poles of the electric field coils. The PC board is fabricated with multiple layers of coils or with multiple boards. Each layer supports spiral traces around a central hole. Alternate layers spiral from the center outwards or from the edges inward. In this way each layer connects via simple feed-through holes, and the current always travels in the same direction, summing the ampere-turns.
0130The PC boards within the lower and upper stationary housings <b>20</b> and <b>30</b> are connected to the lower and upper inner insulating housings <b>22</b> and <b>32</b> with the rivets <b>18</b>. The lower and upper inner insulating housings <b>22</b> and <b>32</b> expose the rivet heads on opposite ends of the slot where the lancet assembly <b>24</b> and <b>26</b> travels. The magnetic field lines from each rivet create magnetic poles at the rivet heads. An iron bar on the opposite side of the PC board within each of the lower and upper stationary housing <b>20</b> and <b>30</b> completes the magnetic circuit by connecting the rivets. Any fastener made of magnetically permeable material such as iron or steel can be used In place of the rivets. A single component made of magnetically permeable material and formed in a horseshoe shape can be used in place of the rivet/screw and iron bar assembly. In operation, the magnetically permeable flag <b>26</b> attached to the lancet <b>24</b> is divided into slits and bars <b>34</b>. The slit patterns are staggered so that coils can drive the flag <b>26</b> in two, three or more phases.
0131Both lower and upper PC boards <b>20</b> and <b>30</b> contain drive coils so that there is a symmetrical magnetic field above and below the flag <b>26</b>. When the pair of PC boards is turned on, a magnetic field is established around the bars between the slits of the magnetically permeable iron on the flag <b>26</b>. The bars of the flag experience a force that tends to move the magnetically permeable material to a position minimizing the number and length of magnetic field lines and conducting the magnetic field lines between the magnetic poles.
0132When a bar of the flag <b>26</b> is centered between the rivets <b>18</b> of a magnetic pole, there is no net force on the flag, and any disturbing force is resisted by imbalance in the field. This embodiment of the device operates on a principle similar to that of a solenoid. Solenoids cannot push by repelling iron; they can only pull by attracting the iron into a minimum energy position. The slits <b>34</b> on one side of the flag <b>26</b> are offset with respect to the other side by approximately one half of the pitch of the poles. By alternately activating the coils on each side of the PC board, the lancet assembly can be moved with respect to the stationary housing assembly. The direction of travel is established by selectively energizing the coils adjacent the metal flag on the lancet assembly. Alternatively, a three phase, three-pole design or a shading coil that is offset by one-quarter pitch establishes the direction of travel. The lower and upper PC boards <b>20</b> and <b>30</b> shown in <figref idref="DRAWINGS">FIG. 4</figref> contain electric field coils, which drive the lancet assembly and the circuitry for controlling the entire electromagnetic driver.
0133The embodiment described above generally uses the principles of a magnetic attraction drive, similar to commonly available circular stepper motors (Hurst Manufacturing BA Series motor, or “Electrical Engineering Handbook” Second edition p 1472-1474, 1997). These references are hereby incorporated by reference. Other embodiments can include a linear induction drive that uses a changing magnetic field to induce electric currents in the lancet assembly. These induced currents produce a secondary magnetic field that repels the primary field and applies a net force on the lancet assembly. The linear induction drive uses an electrical drive control that sweeps a magnetic field from pole to pole, propelling the lancet before it. Varying the rate of the sweep and the magnitude of the field by altering the driving voltage and frequency controls the force applied to the lancet assembly and its velocity.
0134The arrangement of the coils and rivets to concentrate the magnetic flux also applies to the induction design creating a growing magnetic field as the electric current in the field switches on. This growing magnetic field creates an opposing electric current in the conductive flag. In a linear induction motor the flag is electrically conductive, and its magnetic properties are unimportant. Copper or aluminum are materials that can be used for the conductive flags. Copper is generally used because of its good electrical conductivity. The opposing electrical field produces an opposing magnetic field that repels the field of the coils. By phasing the power of the coils, a moving field can be generated which pushes the flag along just below the synchronous speed of the coils. By controlling the rate of sweep, and by generating multiple sweeps, the flag can be moved at a desired speed.
0135<figref idref="DRAWINGS">FIG. 5</figref> shows another embodiment of a solenoid type electromagnetic driver that is capable of driving an iron core or slug mounted to the lancet assembly using a direct current (DC) power supply. The electromagnetic driver includes a driver coil pack that is divided into three separate coils along the path of the lancet, two end coils and a middle coil. Direct current is alternated to the coils to advance and retract the lancet. Although the driver coil pack is shown with three coils, any suitable number of coils may be used, for example, 4, 5, 6, 7 or more coils may be used.
0136The stationary iron housing <b>40</b> contains the driver coil pack with a first coil <b>52</b> is flanked by iron spacers <b>50</b> which concentrate the magnetic flux at the inner diameter creating magnetic poles. The inner insulating housing <b>48</b> isolates the lancet <b>42</b> and iron core <b>46</b> from the coils and provides a smooth, low friction guide surface. The lancet guide <b>44</b> further centers the lancet <b>42</b> and iron core <b>46</b>. The lancet <b>42</b> is protracted and retracted by alternating the current between the first coil <b>52</b>, the middle coil, and the third coil to attract the iron core <b>46</b>. Reversing the coil sequence and attracting the core and lancet back into the housing retracts the lancet. The lancet guide <b>44</b> also serves as a stop for the iron core <b>46</b> mounted to the lancet <b>42</b>.
0137As discussed above, tissue penetration devices which employ spring or cam driving methods have a symmetrical or nearly symmetrical actuation displacement and velocity profiles on the advancement and retraction of the lancet as shown in <figref idref="DRAWINGS">FIGS. 6 and 7</figref>. In most of the available lancet devices, once the launch is initiated, the stored energy determines the velocity profile until the energy is dissipated. Controlling impact, retraction velocity, and dwell time of the lancet within the tissue can be useful in order to achieve a high success rate while accommodating variations in skin properties and minimize pain. Advantages can be achieved by taking into account that tissue dwell time is related to the amount of skin deformation as the lancet tries to puncture the surface of the skin and variance in skin deformation from patient to patient based on skin hydration.
0138The ability to control velocity and depth of penetration can be achieved by use of a controllable force driver where feedback is an integral part of driver control. Such drivers can control either metal or polymeric lancets or any other type of tissue penetration element. The dynamic control of such a driver is illustrated in <figref idref="DRAWINGS">FIG. 8</figref> which illustrates an embodiment of a controlled displacement profile and <figref idref="DRAWINGS">FIG. 9</figref> which illustrates an embodiment of a the controlled velocity profile. These are compared to <figref idref="DRAWINGS">FIGS. 6 and 7</figref>, which illustrate embodiments of displacement and velocity profiles, respectively, of a harmonic spring/mass powered driver.
0139Reduced pain can be achieved by using impact velocities of greater than 2 m/s entry of a tissue penetrating element, such as a lancet, into tissue.
0140Retraction of the lancet at a low velocity following the sectioning of the venuole/capillary mesh allows the blood to flood the wound tract and flow freely to the surface, thus using the lancet to keep the channel open during retraction as shown in <figref idref="DRAWINGS">FIGS. 10 and 11</figref>. Low-velocity retraction of the lancet near the wound flap prevents the wound flap from sealing off the channel. Thus, the ability to slow the lancet retraction directly contributes to increasing the success rate of obtaining blood. Increasing the sampling success rate to near 100% can be important to the combination of sampling and acquisition into an integrated sampling module such as an integrated glucose-sampling module, which incorporates a glucose test strip.
0141Referring again to <figref idref="DRAWINGS">FIG. 5</figref>, the lancet and lancet driver are configured so that feedback control is based on lancet displacement, velocity, or acceleration. The feedback control information relating to the actual lancet path is returned to a processor such as that illustrated in <figref idref="DRAWINGS">FIG. 12</figref> that regulates the energy to the driver, thereby precisely controlling the lancet throughout its advancement and retraction. The driver may be driven by electric current, which includes direct current and alternating current.
0142In <figref idref="DRAWINGS">FIG. 5</figref>, the electromagnetic driver shown is capable of driving an iron core or slug mounted to the lancet assembly using a direct current (DC) power supply and is also capable of determining the position of the iron core by measuring magnetic coupling between the core and the coils. The coils can be used in pairs to draw the iron core into the driver coil pack. As one of the coils is switched on, the corresponding induced current in the adjacent coil can be monitored. The strength of this induced current is related to the degree of magnetic coupling provided by the iron core, and can be used to infer the position of the core and hence, the relative position of the lancet.
0143After a period of time, the drive voltage can be turned off, allowing the coils to relax, and then the cycle is repeated. The degree of magnetic coupling between the coils is converted electronically to a proportional DC voltage that is supplied to an analog-to-digital converter. The digitized position signal is then processed and compared to a desired “nominal” position by a central processing unit (CPU). The CPU to set the level and/or length of the next power pulse to the solenoid coils uses error between the actual and nominal positions.
0144In another embodiment, the driver coil pack has three coils consisting of a central driving coil flanked by balanced detection coils built into the driver assembly so that they surround an actuation or magnetically active region with the region centered on the middle coil at mid-stroke. When a current pulse is applied to the central coil, voltages are induced in the adjacent sense coils. If the sense coils are connected together so that their induced voltages oppose each other, the resulting signal will be positive for deflection from mid-stroke in one direction, negative in the other direction, and zero at mid-stroke. This measuring technique is commonly used in Linear Variable Differential Transformers (LVDT). Lancet position is determined by measuring the electrical balance between the two sensing coils.
0145In another embodiment, a feedback loop can use a commercially available LED/photo transducer module such as the OPB703 manufactured by Optek Technology, Inc., 1215 W. Crosby Road, Carrollton, Tex., 75006 to determine the distance from the fixed module on the stationary housing to a reflective surface or target mounted on the lancet assembly. The LED acts as a light emitter to send light beams to the reflective surface, which in turn reflects the light back to the photo transducer, which acts as a light sensor. Distances over the range of 4 mm or so are determined by measuring the intensity of the reflected light by the photo transducer. In another embodiment, a feedback loop can use a magnetically permeable region on the lancet shaft itself as the core of a Linear Variable Differential Transformer (LVDT).
0146A permeable region created by selectively annealing a portion of the lancet shaft, or by including a component in the lancet assembly, such as ferrite, with sufficient magnetic permeability to allow coupling between adjacent sensing coils. Coil size, number of windings, drive current, signal amplification, and air gap to the permeable region are specified in the design process. In another embodiment, the feedback control supplies a piezoelectric driver, superimposing a high frequency oscillation on the basic displacement profile. The piezoelectric driver provides improved cutting efficiency and reduces pain by allowing the lancet to “saw” its way into the tissue or to destroy cells with cavitation energy generated by the high frequency of vibration of the advancing edge of the lancet. The drive power to the piezoelectric driver is monitored for an impedance shift as the device interacts with the target tissue. The resulting force measurement, coupled with the known mass of the lancet is used to determine lancet acceleration, velocity, and position.
0147<figref idref="DRAWINGS">FIG. 12</figref> illustrates the operation of a feedback loop using a processor. The processor <b>60</b> stores profiles <b>62</b> in non-volatile memory. A user inputs information <b>64</b> about the desired circumstances or parameters for a lancing event. The processor <b>60</b> selects a driver profile <b>62</b> from a set of alternative driver profiles that have been preprogrammed in the processor <b>60</b> based on typical or desired tissue penetration device performance determined through testing at the factory or as programmed in by the operator. The processor <b>60</b> may customize by either scaling or modifying the profile based on additional user input information <b>64</b>. Once the processor has chosen and customized the profile, the processor <b>60</b> is ready to modulate the power from the power supply <b>66</b> to the lancet driver <b>68</b> through an amplifier <b>70</b>. The processor <b>60</b> measures the location of the lancet <b>72</b> using a position sensing mechanism <b>74</b> through an analog to digital converter <b>76</b>. Examples of position sensing mechanisms have been described in the embodiments above. The processor <b>60</b> calculates the movement of the lancet by comparing the actual profile of the lancet to the predetermined profile. The processor <b>60</b> modulates the power to the lancet driver <b>68</b> through a signal generator <b>78</b>, which controls the amplifier <b>70</b> so that the actual profile of the lancet does not exceed the predetermined profile by more than a preset error limit. The error limit is the accuracy in the control of the lancet.
0148After the lancing event, the processor <b>60</b> can allow the user to rank the results of the lancing event. The processor <b>60</b> stores these results and constructs a database <b>80</b> for the individual user. Using the database <b>80</b>, the processor <b>60</b> calculates the profile traits such as degree of painlessness, success rate, and blood volume for various profiles <b>62</b> depending on user input information <b>64</b> to optimize the profile to the individual user for subsequent lancing cycles. These profile traits depend on the characteristic phases of lancet advancement and retraction. The processor <b>60</b> uses these calculations to optimize profiles <b>62</b> for each user. In addition to user input information <b>64</b>, an internal clock allows storage in the database <b>80</b> of information such as the time of day to generate a time stamp for the lancing event and the time between lancing events to anticipate the user's diurnal needs. The database stores information and statistics for each user and each profile that particular user uses.
0149In addition to varying the profiles, the processor <b>60</b> can be used to calculate the appropriate lancet diameter and geometry necessary to realize the blood volume required by the user. For example, if the user requires a 1-5 micro liter volume of blood, the processor selects a 200 micron diameter lancet to achieve these results. For each class of lancet, both diameter and lancet tip geometry, is stored in the processor to correspond with upper and lower limits of attainable blood volume based on the predetermined displacement and velocity profiles.
0150The lancing device is capable of prompting the user for information at the beginning and the end of the lancing event to more adequately suit the user. The goal is to either change to a different profile or modify an existing profile. Once the profile is set, the force driving the lancet is varied during advancement and retraction to follow the profile. The method of lancing using the lancing device comprises selecting a profile, lancing according to the selected profile, determining lancing profile traits for each characteristic phase of the lancing cycle, and optimizing profile traits for subsequent lancing events.
0151<figref idref="DRAWINGS">FIG. 13</figref> shows an embodiment of the characteristic phases of lancet advancement and retraction on a graph of force versus time illustrating the force exerted by the lancet driver on the lancet to achieve the desired displacement and velocity profile. The characteristic phases are the lancet introduction phase A-C where the lancet is longitudinally advanced into the skin, the lancet rest phase D where the lancet terminates its longitudinal movement reaching its maximum depth and becoming relatively stationary, and the lancet retraction phase E-G where the lancet is longitudinally retracted out of the skin. The duration of the lancet retraction phase E-G is longer than the duration of the lancet introduction phase A-C, which in turn is longer than the duration of the lancet rest phase D.
0152The introduction phase further comprises a lancet launch phase prior to A when the lancet is longitudinally moving through air toward the skin, a tissue contact phase at the beginning of A when the distal end of the lancet makes initial contact with the skin, a tissue deformation phase A when the skin bends depending on its elastic properties which are related to hydration and thickness, a tissue lancing phase which comprises when the lancet hits the inflection point on the skin and begins to cut the skin B and the lancet continues cutting the skin C. The lancet rest phase D is the limit of the penetration of the lancet into the skin. Pain is reduced by minimizing the duration of the lancet introduction phase A-C so that there is a fast incision to a certain penetration depth regardless of the duration of the deformation phase A and inflection point cutting B which will vary from user to user. Success rate is increased by measuring the exact depth of penetration from inflection point B to the limit of penetration in the lancet rest phase D. This measurement allows the lancet to always, or at least reliably, hit the capillary beds which are a known distance underneath the surface of the skin.
0153The lancet retraction phase further comprises a primary retraction phase E when the skin pushes the lancet out of the wound tract, a secondary retraction phase F when the lancet starts to become dislodged and pulls in the opposite direction of the skin, and lancet exit phase G when the lancet becomes free of the skin. Primary retraction is the result of exerting a decreasing force to pull the lancet out of the skin as the lancet pulls away from the finger. Secondary retraction is the result of exerting a force in the opposite direction to dislodge the lancet. Control is necessary to keep the wound tract open as blood flows up the wound tract. Blood volume is increased by using a uniform velocity to retract the lancet during the lancet retraction phase E-G regardless of the force required for the primary retraction phase E or secondary retraction phase F, either of which may vary from user to user depending on the properties of the user's skin.
0154<figref idref="DRAWINGS">FIG. 14</figref> shows a standard industry lancet for glucose testing which has a three-facet geometry. Taking a rod of diameter <b>114</b> and grinding 8 degrees to the plane of the primary axis to create the primary facet <b>110</b> produces the lancet <b>116</b>. The secondary facets <b>112</b> are then created by rotating the shaft of the needle 15 degrees, and then rolling over 12 degrees to the plane of the primary facet. Other possible geometry's require altering the lancet's production parameters such as shaft diameter, angles, and translation distance.
0155<figref idref="DRAWINGS">FIG. 15</figref> illustrates facet and tip geometry <b>120</b> and <b>122</b>, diameter <b>124</b>, and depth <b>126</b> which are significant factors in reducing pain, blood volume and success rate. It is known that additional cutting by the lancet is achieved by increasing the shear percentage or ratio of the primary to secondary facets, which when combined with reducing the lancet's diameter reduces skin tear and penetration force and gives the perception of less pain. Overall success rate of blood yield, however, also depends on a variety of factors, including the existence of facets, facet geometry, and skin anatomy.
0156<figref idref="DRAWINGS">FIG. 16</figref> shows another embodiment of displacement versus time profile of a lancet for a controlled lancet retraction. <figref idref="DRAWINGS">FIG. 17</figref> shows the velocity vs. time profile of the lancet for the controlled retraction of <figref idref="DRAWINGS">FIG. 16</figref>. The lancet driver controls lancet displacement and velocity at several steps in the lancing cycle, including when the lancet cuts the blood vessels to allow blood to pool <b>130</b>, and as the lancet retracts, regulating the retraction rate to allow the blood to flood the wound tract while keeping the wound flap from sealing the channel <b>132</b> to permit blood to exit the wound.
0157In addition to slow retraction of a tissue-penetrating element in order to hold the wound open to allow blood to escape to the skin surface, other methods are contemplated. <figref idref="DRAWINGS">FIG. 18</figref> shows the use of an embodiment of the invention, which includes a retractable coil on the lancet tip. A coiled helix or tube <b>140</b> is attached externally to lancet <b>116</b> with the freedom to slide such that when the lancet penetrates the skin <b>150</b>, the helix or tube <b>140</b> follows the trajectory of the lancet <b>116</b>. The helix begins the lancing cycle coiled around the facets and shaft of the lancet <b>144</b>. As the lancet penetrates the skin, the helix braces the wound tract around the lancet <b>146</b>. As the lancet retracts, the helix remains to brace open the wound tract, keeping the wound tract from collapsing and keeping the surface skin flap from closing <b>148</b>. This allows blood <b>152</b> to pool and flow up the channel to the surface of the skin. The helix is then retracted as the lancet pulls the helix to the point where the helix is decompressed to the point where the diameter of the helix becomes less than the diameter of the wound tract and becomes dislodged from the skin.
0158The tube or helix <b>140</b> is made of wire or metal of the type commonly used in angioplasty stents such as stainless steel, nickel titanium alloy or the like. Alternatively the tube or helix <b>140</b> or a ring can be made of a biodegradable material, which braces the wound tract by becoming lodged in the skin. Biodegradation is completed within seconds or minutes of insertion, allowing adequate time for blood to pool and flow up the wound tract. Biodegradation is activated by heat, moisture, or pH from the skin.
0159Alternatively, the wound could be held open by coating the lancet with a powder or other granular substance. The powder coats the wound tract and keeps it open when the lancet is withdrawn. The powder or other granular substance can be a coarse bed of microspheres or capsules which hold the channel open while allowing blood to flow through the porous interstices.
0160In another embodiment the wound can be held open using a two-part needle, the outer part in the shape of a “U” and the inner part filling the “U.” After creating the wound the inner needle is withdrawn leaving an open channel, rather like the plugs that are commonly used for withdrawing sap from maple trees.
0161<figref idref="DRAWINGS">FIG. 19</figref> shows a further embodiment of a method and device for facilitating blood flow utilizing an elastomer to coat the wound. This method uses an elastomer <b>154</b>, such as silicon rubber, to coat or brace the wound tract <b>156</b> by covering and stretching the surface of the finger <b>158</b>. The elastomer <b>154</b> is applied to the finger <b>158</b> prior to lancing. After a short delay, the lancet (not shown) then penetrates the elastomer <b>154</b> and the skin on the surface of the finger <b>158</b> as is seen in <b>160</b>. Blood is allowed to pool and rise to the surface while the elastomer <b>154</b> braces the wound tract <b>156</b> as is seen in <b>162</b> and <b>164</b>. Other known mechanisms for increasing the success rate of blood yield after lancing can include creating a vacuum, suctioning the wound, applying an adhesive strip, vibration while cutting, or initiating a second lance if the first is unsuccessful.
0162<figref idref="DRAWINGS">FIG. 20</figref> illustrates an embodiment of a tissue penetration device, more specifically, a lancing device <b>180</b> that includes a controllable driver <b>179</b> coupled to a tissue penetration element. The lancing device <b>180</b> has a proximal end <b>181</b> and a distal end <b>182</b>. At the distal end <b>182</b> is the tissue penetration element in the form of a lancet <b>183</b>, which is coupled to an elongate coupler shaft <b>184</b> by a drive coupler <b>185</b>. The elongate coupler shaft <b>184</b> has a proximal end <b>186</b> and a distal end <b>187</b>. A driver coil pack <b>188</b> is disposed about the elongate coupler shaft <b>184</b> proximal of the lancet <b>183</b>. A position sensor <b>191</b> is disposed about a proximal portion <b>192</b> of the elongate coupler shaft <b>184</b> and an electrical conductor <b>194</b> electrically couples a processor <b>193</b> to the position sensor <b>191</b>. The elongate coupler shaft <b>184</b> driven by the driver coil pack <b>188</b> controlled by the position sensor <b>191</b> and processor <b>193</b> form the controllable driver, specifically, a controllable electromagnetic driver.
0163Referring to <figref idref="DRAWINGS">FIG. 21</figref>, the lancing device <b>180</b> can be seen in more detail, in partial longitudinal section. The lancet <b>183</b> has a proximal end <b>195</b> and a distal end <b>196</b> with a sharpened point at the distal end <b>196</b> of the lancet <b>183</b> and a drive head <b>198</b> disposed at the proximal end <b>195</b> of the lancet <b>183</b>. A lancet shaft <b>201</b> is disposed between the drive head <b>198</b> and the sharpened point <b>197</b>. The lancet shaft <b>201</b> may be comprised of stainless steel, or any other suitable material or alloy and have a transverse dimension of about 0.1 to about 0.4 mm. The lancet shaft may have a length of about 3 mm to about 50 mm, specifically, about 15 mm to about 20 mm. The drive head <b>198</b> of the lancet <b>183</b> is an enlarged portion having a transverse dimension greater than a transverse dimension of the lancet shaft <b>201</b> distal of the drive head <b>198</b>. This configuration allows the drive head <b>198</b> to be mechanically captured by the drive coupler <b>185</b>. The drive head <b>198</b> may have a transverse dimension of about 0.5 to about 2 mm.
0164A magnetic member <b>202</b> is secured to the elongate coupler shaft <b>184</b> proximal of the drive coupler <b>185</b> on a distal portion <b>203</b> of the elongate coupler shaft <b>184</b>. The magnetic member <b>202</b> is a substantially cylindrical piece of magnetic material having an axial lumen <b>204</b> extending the length of the magnetic member <b>202</b>. The magnetic member <b>202</b> has an outer transverse dimension that allows the magnetic member <b>202</b> to slide easily within an axial lumen <b>205</b> of a low friction, possibly lubricious, polymer guide tube <b>205</b>′ disposed within the driver coil pack <b>188</b>. The magnetic member <b>202</b> may have an outer transverse dimension of about 1.0 to about 5.0 mm, specifically, about 2.3 to about 2.5 mm. The magnetic member <b>202</b> may have a length of about 3.0 to about 5.0 mm, specifically, about 4.7 to about 4.9 mm. The magnetic member <b>202</b> can be made from a variety of magnetic materials including ferrous metals such as ferrous steel, iron, ferrite, or the like. The magnetic member <b>202</b> may be secured to the distal portion <b>203</b> of the elongate coupler shaft <b>184</b> by a variety of methods including adhesive or epoxy bonding, welding, crimping or any other suitable method.
0165Proximal of the magnetic member <b>202</b>, an optical encoder flag <b>206</b> is secured to the elongate coupler shaft <b>184</b>. The optical encoder flag <b>206</b> is configured to move within a slot <b>207</b> in the position sensor <b>191</b>. The slot <b>207</b> of the position sensor <b>191</b> is formed between a first body portion <b>208</b> and a second body portion <b>209</b> of the position sensor <b>191</b>. The slot <b>207</b> may have separation width of about 1.5 to about 2.0 mm. The optical encoder flag <b>206</b> can have a length of about 14 to about 18 mm, a width of about 3 to about 5 mm and a thickness of about 0.04 to about 0.06 mm.
0166The optical encoder flag <b>206</b> interacts with various optical beams generated by LEDs disposed on or in the position sensor body portions <b>208</b> and <b>209</b> in a predetermined manner. The interaction of the optical beams generated by the LEDs of the position sensor <b>191</b> generates a signal that indicates the longitudinal position of the optical flag <b>206</b> relative to the position sensor <b>191</b> with a substantially high degree of resolution. The resolution of the position sensor <b>191</b> may be about 200 to about 400 cycles per inch, specifically, about 350 to about 370 cycles per inch. The position sensor <b>191</b> may have a speed response time (position/time resolution) of 0 to about 120,000 Hz, where one dark and light stripe of the flag constitutes one Hertz, or cycle per second. The position of the optical encoder flag <b>206</b> relative to the magnetic member <b>202</b>, driver coil pack <b>188</b> and position sensor <b>191</b> is such that the optical encoder <b>191</b> can provide precise positional information about the lancet <b>183</b> over the entire length of the lancet's power stroke.
0167An optical encoder that is suitable for the position sensor <b>191</b> is a linear optical incremental encoder, model HEDS 9200, manufactured by Agilent Technologies. The model HEDS 9200 may have a length of about 20 to about 30 mm, a width of about 8 to about 12 mm, and a height of about 9 to about 11 mm. Although the position sensor <b>191</b> illustrated is a linear optical incremental encoder, other suitable position sensor embodiments could be used, provided they posses the requisite positional resolution and time response. The HEDS 9200 is a two channel device where the channels are 90 degrees out of phase with each other. This results in a resolution of four times the basic cycle of the flag. These quadrature outputs make it possible for the processor to determine the direction of lancet travel. Other suitable position sensors include capacitive encoders, analog reflective sensors, such as the reflective position sensor discussed above, and the like.
0168A coupler shaft guide <b>211</b> is disposed towards the proximal end <b>181</b> of the lancing device <b>180</b>. The guide <b>211</b> has a guide lumen <b>212</b> disposed in the guide <b>211</b> to slidingly accept the proximal portion <b>192</b> of the elongate coupler shaft <b>184</b>. The guide <b>211</b> keeps the elongate coupler shaft <b>184</b> centered horizontally and vertically in the slot <b>202</b> of the optical encoder <b>191</b>.
0169The driver coil pack <b>188</b>, position sensor <b>191</b> and coupler shaft guide <b>211</b> are all secured to a base <b>213</b>. The base <b>213</b> is longitudinally coextensive with the driver coil pack <b>188</b>, position sensor <b>191</b> and coupler shaft guide <b>211</b>. The base <b>213</b> can take the form of a rectangular piece of metal or polymer, or may be a more elaborate housing with recesses, which are configured to accept the various components of the lancing device <b>180</b>.
0170As discussed above, the magnetic member <b>202</b> is configured to slide within an axial lumen <b>205</b> of the driver coil pack <b>188</b>. The driver coil pack <b>188</b> includes a most distal first coil <b>214</b>, a second coil <b>215</b>, which is axially disposed between the first coil <b>214</b> and a third coil <b>216</b>, and a proximal-most fourth coil <b>217</b>. Each of the first coil <b>214</b>, second coil <b>215</b>, third coil <b>216</b> and fourth coil <b>217</b> has an axial lumen. The axial lumens of the first through fourth coils are configured to be coaxial with the axial lumens of the other coils and together form the axial lumen <b>205</b> of the driver coil pack <b>188</b> as a whole. Axially adjacent each of the coils <b>214</b>-<b>217</b> is a magnetic disk or washer <b>218</b> that augments completion of the magnetic circuit of the coils <b>214</b>-<b>217</b> during a lancing cycle of the device <b>180</b>. The magnetic washers <b>218</b> of the embodiment of <figref idref="DRAWINGS">FIG. 21</figref> are made of ferrous steel but could be made of any other suitable magnetic material, such as iron or ferrite. The outer shell <b>189</b> of the driver coil pack <b>188</b> is also made of iron or steel to complete the magnetic path around the coils and between the washers <b>218</b>. The magnetic washers <b>218</b> have an outer diameter commensurate with an outer diameter of the driver coil pack <b>188</b> of about 4.0 to about 8.0 mm. The magnetic washers <b>218</b> have an axial thickness of about 0.05, to about 0.4 mm, specifically, about 0.15 to about 0.25 mm.
0171Wrapping or winding an elongate electrical conductor <b>221</b> about an axial lumen until a sufficient number of windings have been achieved forms the coils <b>214</b>-<b>217</b>. The elongate electrical conductor <b>221</b> is generally an insulated solid copper wire with a small outer transverse dimension of about 0.06 mm to about 0.88 mm, specifically, about 0.3 mm to about 0.5 mm. In one embodiment, 32 gauge copper wire is used for the coils <b>214</b>-<b>217</b>. The number of windings for each of the coils <b>214</b>-<b>217</b> of the driver pack <b>188</b> may vary with the size of the coil, but for some embodiments each coil <b>214</b>-<b>217</b> may have about 30 to about 80 turns, specifically, about 50 to about 60 turns. Each coil <b>214</b>-<b>217</b> can have an axial length of about 1.0 to about 3.0 mm, specifically, about 1.8 to about 2.0 mm. Each coil <b>214</b>-<b>217</b> can have an outer transverse dimension or diameter of about 4.0, to about 2.0 mm, specifically, about 9.0 to about 12.0 mm. The axial lumen <b>205</b> can have a transverse dimension of about 1.0 to about 3.0 mm.
0172It may be advantageous in some driver coil <b>188</b> embodiments to replace one or more of the coils with permanent magnets, which produce a magnetic field similar to that of the coils when the coils are activated. In particular, it may be desirable in some embodiments to replace the second coil <b>215</b>, the third coil <b>216</b> or both with permanent magnets. In addition, it may be advantageous to position a permanent magnet at or near the proximal end of the coil driver pack in order to provide fixed magnet zeroing function for the magnetic member (Adams magnetic Products 23A0002 flexible magnet material (800) 747-7543).
0173<figref idref="DRAWINGS">FIGS. 20 and 21</figref> show a permanent bar magnet <b>219</b> disposed on the proximal end of the driver coil pack <b>188</b>. As shown in <figref idref="DRAWINGS">FIG. 21</figref>, the bar magnet <b>219</b> is arranged so as to have one end disposed adjacent the travel path of the magnetic member <b>202</b> and has a polarity configured so as to attract the magnetic member <b>202</b> in a centered position with respect to the bar magnet <b>219</b>. Note that the polymer guide tube <b>205</b>′ can be configured to extend proximally to insulate the inward radial surface of the bar magnet <b>219</b> from an outer surface of the magnetic member <b>202</b>. This arrangement allows the magnetic member <b>219</b> and thus the elongate coupler shaft <b>184</b> to be attracted to and held in a zero point or rest position without the consumption of electrical energy from the power supply <b>225</b>.
0174Having a fixed zero or start point for the elongate coupler shaft <b>184</b> and lancet <b>183</b> can be critical to properly controlling the depth of penetration of the lancet <b>183</b> as well as other lancing parameters. This can be because some methods of depth penetration control for a controllable driver measure the acceleration and displacement of the elongate coupler shaft <b>184</b> and lancet <b>183</b> from a known start position. If the distance of the lancet tip <b>196</b> from the target tissue is known, acceleration and displacement of the lancet is known and the start position of the lancet is know, the time and position of tissue contact and depth of penetration can be determined by the processor <b>193</b>.
0175Any number of configurations for a magnetic bar <b>219</b> can be used for the purposes discussed above. In particular, a second permanent bar magnet (not shown) could be added to the proximal end of the driver coil pack <b>188</b> with the magnetic fields of the two bar magnets configured to complement each other. In addition, a disc magnet <b>219</b>′ could be used as illustrated in <figref idref="DRAWINGS">FIG. 22</figref>. Disc magnet <b>219</b>′ is shown disposed at the proximal end of the driver coiled pack <b>188</b> with a polymer non-magnetic disc <b>219</b>″ disposed between the proximal-most coil <b>217</b> and disc magnet <b>219</b>′ and positions disc magnet <b>219</b>′ away from the proximal end of the proximal-most coil <b>217</b>. The polymer non-magnetic disc spacer <b>219</b>″ is used so that the magnetic member <b>202</b> can be centered in a zero or start position slightly proximal of the proximal-most coil <b>217</b> of the driver coil pack <b>188</b>. This allows the magnetic member to be attracted by the proximal-most coil <b>217</b> at the initiation of the lancing cycle instead of being passive in the forward drive portion of the lancing cycle.
0176An inner lumen of the polymer non-magnetic disc <b>219</b>″ can be configured to allow the magnetic member <b>202</b> to pass axially there through while an inner lumen of the disc magnet <b>219</b>′ can be configured to allow the elongate coupler shaft <b>184</b> to pass through but not large enough for the magnetic member <b>202</b> to pass through. This results in the magnetic member <b>202</b> being attracted to the disc magnet <b>219</b>′ and coming to rest with the proximal surface of the magnetic member <b>202</b> against a distal surface of the disc magnet <b>219</b>′. This arrangement provides for a positive and repeatable stop for the magnetic member, and hence the lancet. A similar configuration could also be used for the bar magnet <b>219</b> discussed above.
0177Typically, when the electrical current in the coils <b>214</b>-<b>217</b> of the driver coil pack <b>188</b> is off, a magnetic member <b>202</b> made of soft iron is attracted to the bar magnet <b>219</b> or disc magnet <b>219</b>′. The magnetic field of the driver coil pack <b>188</b> and the bar magnet <b>219</b> or disc magnet <b>219</b>′, or any other suitable magnet, can be configured such that when the electrical current in the coils <b>214</b>-<b>217</b> is turned on, the leakage magnetic field from the coils <b>214</b>-<b>217</b> has the same polarity as the bar magnet <b>219</b> or disc magnet <b>219</b>′. This results in a magnetic force that repels the magnetic member <b>202</b> from the bar magnet <b>219</b> or disc magnet <b>219</b>′ and attracts the magnetic member <b>202</b> to the activated coils <b>214</b>-<b>217</b>. For this configuration, the bar magnet <b>219</b> or disc magnet thus act to facilitate acceleration of the magnetic member <b>202</b> as opposed to working against the acceleration.
0178Electrical conductors <b>222</b> couple the driver coil pack <b>188</b> with the processor <b>193</b> which can be configured or programmed to control the current flow in the coils <b>214</b>-<b>217</b> of the driver coil pack <b>188</b> based on position feedback from the position sensor <b>191</b>, which is coupled to the processor <b>193</b> by electrical conductors <b>194</b>. A power source <b>225</b> is electrically coupled to the processor <b>193</b> and provides electrical power to operate the processor <b>193</b> and power the coil driver pack <b>188</b>. The power source <b>225</b> may be one or more batteries that provide direct current power to the <b>193</b> processor.
0179<figref idref="DRAWINGS">FIG. 23</figref> shows a transverse cross sectional view of drive coupler <b>185</b> in more detail. The drive head <b>198</b> of the lancet <b>183</b> is disposed within the drive coupler <b>185</b> with a first retaining rail <b>226</b> and second retaining rail <b>227</b> capturing the drive head <b>198</b> while allowing the drive head <b>198</b> to be inserted laterally into the drive computer <b>185</b> and retracted laterally with minimal mechanical resistance. The drive coupler <b>185</b> may optionally be configured to include snap ridges <b>228</b> which allow the drive head <b>198</b> to be laterally inserted and retracted, but keep the drive head <b>198</b> from falling out of the drive coupler <b>185</b> unless a predetermined amount of externally applied lateral force is applied to the drive head <b>198</b> of the lancet <b>183</b> towards the lateral opening <b>231</b> of the drive coupler <b>185</b>. <figref idref="DRAWINGS">FIG. 27</figref> shows an enlarged side view into the coupler opening <b>231</b> of the drive coupler <b>185</b> showing the snap ridges <b>228</b> disposed in the lateral opening <b>231</b> and the retaining rails <b>226</b> and <b>227</b>. <figref idref="DRAWINGS">FIG. 28</figref> shows an enlarged front view of the drive coupler <b>185</b>. The drive coupler <b>185</b> can be made from an alloy such as stainless steel, titanium or aluminum, but may also be made from a suitable polymer such as ABS, PVC, polycarbonate plastic or the like. The drive coupler may be open on both sides allowing the drive head and lancet to pass through.
0180Referring to <figref idref="DRAWINGS">FIG. 24</figref>, the magnetic member <b>202</b> is disposed about and secured to the elongate coupler shaft <b>184</b>. The magnetic member <b>202</b> is disposed within the axial lumen <b>232</b> of the fourth coil <b>217</b>. The driver coil pack <b>188</b> is secured to the base <b>213</b>. In <figref idref="DRAWINGS">FIG. 25</figref> the position sensor <b>191</b> is secured to the base <b>213</b> with the first body portion <b>208</b> of the position sensor <b>191</b> disposed opposite the second body portion <b>209</b> of the position sensor <b>191</b> with the first and second body portions <b>208</b> and <b>209</b> of the position sensor <b>191</b> separated by the gap or slot <b>207</b>. The elongate coupler shaft <b>184</b> is slidably disposed within the gap <b>207</b> between the first and second body portions <b>208</b> and <b>209</b> of the position sensor <b>191</b>. The optical encoder flag <b>206</b> is secured to the elongate coupler shaft <b>184</b> and disposed between the first body portion <b>208</b> and second body portion <b>209</b> of the position sensor <b>191</b>. Referring to <figref idref="DRAWINGS">FIG. 26</figref>, the proximal portion <b>192</b> of the elongate coupler shaft <b>184</b> is disposed within the guide lumen <b>212</b> of the coupler shaft guide <b>211</b>. The guide lumen <b>212</b> of the coupler shaft guide <b>211</b> may be lined with a low friction material such as Teflon® or the like to reduce friction of the elongate coupler shaft <b>184</b> during the power stroke of the lancing device <b>180</b>.
0181Referring to <figref idref="DRAWINGS">FIGS. 29A-29C</figref>, a flow diagram is shown that describes the operations performed by the processor <b>193</b> in controlling the lancet <b>183</b> of the lancing device <b>180</b> discussed above during an operating cycle. <figref idref="DRAWINGS">FIGS. 30-36</figref> illustrate the interaction of the lancet <b>183</b> and skin <b>233</b> of the patient's finger <b>234</b> during an operation cycle of the lancet device <b>183</b>. The processor <b>193</b> operates under control of programming steps that are stored in an associated memory. When the programming steps are executed, the processor <b>193</b> performs operations as described herein. Thus, the programming steps implement the functionality of the operations described with respect to the flow diagram of <figref idref="DRAWINGS">FIG. 29</figref>. The processor <b>193</b> can receive the programming steps from a program product stored in recordable media, including a direct access program product storage device such as a hard drive or flash ROM, a removable program product storage device such as a floppy disk, or in any other manner known to those of skill in the art. The processor <b>193</b> can also download the programming steps through a network connection or serial connection.
0182In the first operation, represented by the flow diagram box numbered <b>245</b> in <figref idref="DRAWINGS">FIG. 29A</figref>, the processor <b>193</b> initializes values that it stores in memory relating to control of the lancet, such as variables that it uses to keep track of the controllable driver <b>179</b> during movement. For example, the processor may set a clock value to zero and a lancet position value to zero or to some other initial value. The processor <b>193</b> may also cause power to be removed from the coil pack <b>188</b> for a period of time, such as for about 10 ms, to allow any residual flux to dissipate from the coils.
0183In the initialization operation, the processor <b>193</b> also causes the lancet to assume an initial stationary position. When in the initial stationary position, the lancet <b>183</b> is typically fully retracted such that the magnetic member <b>202</b> is positioned substantially adjacent the fourth coil <b>217</b> of the driver coil pack <b>188</b>, shown in <figref idref="DRAWINGS">FIG. 21</figref> above. The processor <b>193</b> can move the lancet <b>183</b> to the initial stationary position by pulsing an electrical current to the fourth coil <b>217</b> to thereby attract the magnetic member <b>202</b> on the lancet <b>183</b> to the fourth coil <b>217</b>. Alternatively, the magnetic member can be positioned in the initial stationary position by virtue of a permanent magnet, such as bar magnet <b>219</b>, disc magnet <b>219</b>′ or any other suitable magnet as discussed above with regard to the tissue penetration device illustrated in <figref idref="DRAWINGS">FIGS. 20 and 21</figref>.
0184In the next operation, represented by the flow diagram box numbered <b>247</b>, the processor <b>193</b> energizes one or more of the coils in the coil pack <b>188</b>. This should cause the lancet <b>183</b> to begin to move (i.e., achieve a non-zero speed) toward the skin target <b>233</b>. The processor <b>193</b> then determines whether or not the lancet is indeed moving, as represented by the decision box numbered <b>249</b>. The processor <b>193</b> can determine whether the lancet <b>183</b> is moving by monitoring the position of the lancet <b>183</b> to determine whether the position changes over time. The processor <b>193</b> can monitor the position of the lancet <b>183</b> by keeping track of the position of the optical encoder flag <b>206</b> secured to the elongate coupler shaft <b>184</b> wherein the encoder <b>191</b> produces a signal coupled to the processor <b>193</b> that indicates the spatial position of the lancet <b>183</b>.
0185If the processor <b>193</b> determines (via timeout without motion events) that the lancet <b>183</b> is not moving (a “No” result from the decision box <b>249</b>), then the process proceeds to the operation represented by the flow diagram box numbered <b>253</b>, where the processor deems that an error condition is present. This means that some error in the system is causing the lancet <b>183</b> not to move. The error may be mechanical, electrical, or software related. For example, the lancet <b>183</b> may be stuck in the stationary position because something is impeding its movement.
0186If the processor <b>193</b> determines that the lancet <b>183</b> is indeed moving (a “Yes” result from the decision box numbered <b>249</b>), then the process proceeds to the operation represented by the flow diagram box numbered <b>257</b>. In this operation, the processor <b>193</b> causes the lancet <b>183</b> to continue to accelerate and launch toward the skin target <b>233</b>, as indicated by the arrow <b>235</b> in <figref idref="DRAWINGS">FIG. 30</figref>. The processor <b>193</b> can achieve acceleration of the lancet <b>183</b> by sending an electrical current to an appropriate coil <b>214</b>-<b>217</b> such that the coil <b>214</b>-<b>217</b> exerts an attractive magnetic launching force on the magnetic member <b>202</b> and causes the magnetic member <b>202</b> and the lancet <b>183</b> coupled thereto to move in a desired direction. For example, the processor <b>193</b> can cause an electrical current to be sent to the third coil <b>216</b> so that the third coil <b>216</b> attracts the magnetic member <b>202</b> and causes the magnetic member <b>202</b> to move from a position adjacent the fourth coil <b>217</b> toward the third coil <b>216</b>. The processor preferably determines which coil <b>214</b>-<b>217</b> should be used to attract the magnetic member <b>202</b> based on the position of the magnetic member <b>202</b> relative to the coils <b>214</b>-<b>217</b>. In this manner, the processor <b>193</b> provides a controlled force to the lancet that controls the movement of the lancet.
0187During this operation, the processor <b>193</b> periodically or continually monitors the position and/or velocity of the lancet <b>183</b>. In keeping track of the velocity and position of the lancet <b>183</b> as the lancet <b>183</b> moves towards the patient's skin <b>233</b> or other tissue, the processor <b>193</b> also monitors and adjusts the electrical current to the coils <b>214</b>-<b>217</b>. In some embodiments, the processor <b>193</b> applies current to an appropriate coil <b>214</b>-<b>217</b> such that the lancet <b>183</b> continues to move according to a desired direction and acceleration. In the instant case, the processor <b>193</b> applies current to the appropriate coil <b>214</b>-<b>217</b> that will cause the lancet <b>183</b> to continue to move in the direction of the patient's skin <b>233</b> or other tissue to be penetrated.
0188The processor <b>193</b> may successively transition the current between coils <b>214</b>-<b>217</b> so that as the magnetic member <b>202</b> moves past a particular coil <b>214</b>-<b>217</b>, the processor <b>193</b> then shuts off current to that coil <b>214</b>-<b>217</b> and then applies current to another coil <b>214</b>-<b>217</b> that will attract the magnetic member <b>202</b> and cause the magnetic member <b>202</b> to continue to move in the desired direction. In transitioning current between the coils <b>214</b>-<b>217</b>, the processor <b>193</b> can take into account various factors, including the speed of the lancet <b>183</b>, the position of the lancet <b>183</b> relative to the coils <b>214</b>-<b>217</b>, the number of coils <b>214</b>-<b>217</b>, and the level of current to be applied to the coils <b>214</b>-<b>217</b> to achieve a desired speed or acceleration.
0189In the next operation, the processor <b>193</b> determines whether the cutting or distal end tip <b>196</b> of the lancet <b>183</b> has contacted the patient's skin <b>233</b>, as shown in <figref idref="DRAWINGS">FIG. 31</figref> and as represented by the decision box numbered <b>265</b> in <figref idref="DRAWINGS">FIG. 29B</figref>. The processor <b>193</b> may determine whether the lancet <b>183</b> has made contact with the target tissue <b>233</b> by a variety of methods, including some that rely on parameters which are measured prior to initiation of a lancing cycle and other methods that are adaptable to use during a lancing cycle without any predetermined parameters.
0190In one embodiment, the processor <b>193</b> determines that the skin has been contacted when the end tip <b>196</b> of the lancet <b>183</b> has moved a predetermined distance with respect to its initial position. If the distance from the tip <b>961</b> of the lancet <b>183</b> to the target tissue <b>233</b> is known prior to initiation of lancet <b>183</b> movement, the initial position of the lancet <b>183</b> is fixed and known, and the movement and position of the lancet <b>183</b> can be accurately measured during a lancing cycle, then the position and time of lancet contact can be determined.
0191This method requires an accurate measurement of the distance between the lancet tip <b>196</b> and the patient's skin <b>233</b> when the lancet <b>183</b> is in the zero time or initial position. This can be accomplished in a number of ways. One way is to control all of the mechanical parameters that influence the distance from the lancet tip <b>196</b> to the patient's tissue or a surface of the lancing device <b>180</b> that will contact the patient's skin <b>233</b>. This could include the start position of the magnetic member <b>202</b>, magnetic path tolerance, magnetic member <b>202</b> dimensions, driver coil pack <b>188</b> location within the lancing device <b>180</b> as a whole, length of the elongate coupling shaft <b>184</b>, placement of the magnetic member <b>202</b> on the elongate coupling shaft <b>184</b>, length of the lancet <b>183</b> etc.
0192If all these parameters, as well as others can be suitably controlled in manufacturing with a tolerance stack-up that is acceptable, then the distance from the lancet tip <b>196</b> to the target tissue <b>233</b> can be determined at the time of manufacture of the lancing device <b>180</b>. The distance could then be programmed into the memory of the processor <b>193</b>. If an adjustable feature is added to the lancing device <b>180</b>, such as an adjustable length elongate coupling shaft <b>184</b>, this can accommodate variations in all of the parameters noted above, except length of the lancet <b>183</b>. An electronic alternative to this mechanical approach would be to calibrate a stored memory contact point into the memory of the processor <b>193</b> during manufacture based on the mechanical parameters described above.
0193In another embodiment, moving the lancet tip <b>196</b> to the target tissue <b>233</b> very slowly and gently touching the skin <b>233</b> prior to actuation can accomplish the distance from the lancet tip <b>196</b> to the tissue <b>233</b>. The position sensor can accurately measure the distance from the initialization point to the point of contact, where the resistance to advancement of the lancet <b>183</b> stops the lancet movement. The lancet <b>183</b> is then retracted to the initialization point having measured the distance to the target tissue <b>233</b> without creating any discomfort to the user.
0194In another embodiment, the processor <b>193</b> may use software to determine whether the lancet <b>183</b> has made contact with the patient's skin <b>233</b> by measuring for a sudden reduction in velocity of the lancet <b>183</b> due to friction or resistance imposed on the lancet <b>183</b> by the patient's skin <b>233</b>. The optical encoder <b>191</b> measures displacement of the lancet <b>183</b>. The position output data provides input to the interrupt input of the processor <b>193</b>. The processor <b>193</b> also has a timer capable of measuring the time between interrupts. The distance between interrupts is known for the optical encoder <b>191</b>, so the velocity of the lancet <b>183</b> can be calculated by dividing the distance between interrupts by the time between the interrupts.
0195This method requires that velocity losses to the lancet <b>183</b> and elongate coupler <b>184</b> assembly due to friction are known to an acceptable level so that these velocity losses and resulting deceleration can be accounted for when establishing a deceleration threshold above which contact between lancet tip <b>196</b> and target tissue <b>233</b> will be presumed. This same concept can be implemented in many ways. For example, rather than monitoring the velocity of the lancet <b>183</b>, if the processor <b>193</b> is controlling the lancet driver in order to maintain a fixed velocity, the power to the driver <b>188</b> could be monitored. If an amount of power above a predetermined threshold is required in order to maintain a constant velocity, then contact between the tip of the lancet <b>196</b> and the skin <b>233</b> could be presumed.
0196In yet another embodiment, the processor <b>193</b> determines skin <b>233</b> contact by the lancet <b>183</b> by detection of an acoustic signal produced by the tip <b>196</b> of the lancet <b>183</b> as it strikes the patient's skin <b>233</b>. Detection of the acoustic signal can be measured by an acoustic detector <b>236</b> placed in contact with the patient's skin <b>233</b> adjacent a lancet penetration site <b>237</b>, as shown in <figref idref="DRAWINGS">FIG. 31</figref>. Suitable acoustic detectors <b>236</b> include piezo electric transducers, microphones and the like. The acoustic detector <b>236</b> transmits an electrical signal generated by the acoustic signal to the processor <b>193</b> via electrical conductors <b>238</b>. In another embodiment, contact of the lancet <b>183</b> with the patient's skin <b>233</b> can be determined by measurement of electrical continuity in a circuit that includes the lancet <b>183</b>, the patient's finger <b>234</b> and an electrical contact pad <b>240</b> that is disposed on the patient's skin <b>233</b> adjacent the contact site <b>237</b> of the lancet <b>183</b>, as shown in <figref idref="DRAWINGS">FIG. 31</figref>. In this embodiment, as soon as the lancet <b>183</b> contacts the patient's skin <b>233</b>, the circuit <b>239</b> is completed and current flows through the circuit <b>239</b>. Completion of the circuit <b>239</b> can then be detected by the processor <b>193</b> to confirm skin <b>233</b> contact by the lancet <b>183</b>.
0197If the lancet <b>183</b> has not contacted the target skin <b>233</b>, then the process proceeds to a timeout operation, as represented by the decision box numbered <b>267</b> in <figref idref="DRAWINGS">FIG. 29B</figref>. In the timeout operation, the processor <b>193</b> waits a predetermined time period. If the timeout period has not yet elapsed (a “No” outcome from the decision box <b>267</b>), then the processor continues to monitor whether the lancet has contacted the target skin <b>233</b>. The processor <b>193</b> preferably continues to monitor the position and speed of the lancet <b>183</b>, as well as the electrical current to the appropriate coil <b>214</b>-<b>217</b> to maintain the desired lancet <b>183</b> movement.
0198If the timeout period elapses without the lancet <b>183</b> contacting the skin (a “Yes” output from the decision box <b>267</b>), then it is deemed that the lancet <b>183</b> will not contact the skin and the process proceeds to a withdraw phase, where the lancet is withdrawn away from the skin <b>233</b>, as discussed more fully below. The lancet <b>183</b> may not have contacted the target skin <b>233</b> for a variety of reasons, such as if the patient removed the skin <b>233</b> from the lancing device or if something obstructed the lancet <b>183</b> prior to it contacting the skin.
0199The processor <b>193</b> may also proceed to the withdraw phase prior to skin contact for other reasons. For example, at some point after initiation of movement of the lancet <b>183</b>, the processor <b>193</b> may determine that the forward acceleration of the lancet <b>183</b> towards the patient's skin <b>233</b> should be stopped or that current to all coils <b>214</b>-<b>217</b> should be shut down. This can occur, for example, if it is determined that the lancet <b>183</b> has achieved sufficient forward velocity, but has not yet contacted the skin <b>233</b>. In one embodiment, the average penetration velocity of the lancet <b>183</b> from the point of contact with the skin to the point of maximum penetration may be about 2.0 to about 10.0 m/s, specifically, about 3.8 to about 4.2 m/s. In another embodiment, the average penetration velocity of the lancet may be from about 2 to about 8 meters per second, specifically, about 2 to about 4 m/s.
0200The processor <b>193</b> can also proceed to the withdraw phase if it is determined that the lancet <b>183</b> has fully extended to the end of the power stroke of the operation cycle of lancing procedure. In other words, the process may proceed to withdraw phase when an axial center <b>241</b> of the magnetic member <b>202</b> has moved distal of an axial center <b>242</b> of the first coil <b>214</b> as show in <figref idref="DRAWINGS">FIG. 21</figref>. In this situation, any continued power to any of the coils <b>214</b>-<b>217</b> of the driver coil pack <b>188</b> serves to decelerate the magnetic member <b>202</b> and thus the lancet <b>183</b>. In this regard, the processor <b>193</b> considers the length of the lancet <b>183</b> (which can be stored in memory) the position of the lancet <b>183</b> relative to the magnetic member <b>202</b>, as well as the distance that the lancet <b>183</b> has traveled.
0201With reference again to the decision box <b>265</b> in <figref idref="DRAWINGS">FIG. 29B</figref>, if the processor <b>193</b> determines that the lancet <b>183</b> has contacted the skin <b>233</b> (a “Yes” outcome from the decision box <b>265</b>), then the processor <b>193</b> can adjust the speed of the lancet <b>183</b> or the power delivered to the lancet <b>183</b> for skin penetration to overcome any frictional forces on the lancet <b>183</b> in order to maintain a desired penetration velocity of the lancet. The flow diagram box numbered <b>267</b> represents this.
0202As the velocity of the lancet <b>183</b> is maintained after contact with the skin <b>233</b>, the distal tip <b>196</b> of the lancet <b>183</b> will first begin to depress or tent the contacted skin <b>237</b> and the skin <b>233</b> adjacent the lancet <b>183</b> to form a tented portion <b>243</b> as shown in <figref idref="DRAWINGS">FIG. 32</figref> and further shown in <figref idref="DRAWINGS">FIG. 33</figref>. As the lancet <b>183</b> continues to move in a distal direction or be driven in a distal direction against the patient's skin <b>233</b>, the lancet <b>183</b> will eventually begin to penetrate the skin <b>233</b>, as shown in <figref idref="DRAWINGS">FIG. 34</figref>. Once penetration of the skin <b>233</b> begins, the static force at the distal tip <b>196</b> of the lancet <b>183</b> from the skin <b>233</b> will become a dynamic cutting force, which is generally less than the static tip force. As a result in the reduction of force on the distal tip <b>196</b> of the lancet <b>183</b> upon initiation of cutting, the tented portion <b>243</b> of the skin <b>233</b> adjacent the distal tip <b>196</b> of the lancet <b>183</b> which had been depressed as shown in <figref idref="DRAWINGS">FIGS. 32 and 24</figref> will spring back as shown in <figref idref="DRAWINGS">FIG. 34</figref>.
0203In the next operation, represented by the decision box numbered <b>271</b> in <figref idref="DRAWINGS">FIG. 29B</figref>, the processor <b>193</b> determines whether the distal end <b>196</b> of the lancet <b>183</b> has reached a brake depth. The brake depth is the skin penetration depth for which the processor <b>193</b> determines that deceleration of the lancet <b>183</b> is to be initiated in order to achieve a desired final penetration depth <b>244</b> of the lancet <b>183</b> as show in <figref idref="DRAWINGS">FIG. 35</figref>. The brake depth may be pre-determined and programmed into the processor's memory, or the processor <b>193</b> may dynamically determine the brake depth during the actuation. The amount of penetration of the lancet <b>183</b> in the skin <b>233</b> of the patient may be measured during the operation cycle of the lancet device <b>180</b>. In addition, as discussed above, the penetration depth necessary for successfully obtaining a useable sample can depend on the amount of tenting of the skin <b>233</b> during the lancing cycle. The amount of tenting of the patient's skin <b>233</b> can in turn depend on the tissue characteristics of the patient such as elasticity, hydration etc. A method for determining these characteristics is discussed below with regard to skin <b>233</b> tenting measurements during the lancing cycle and illustrated in <figref idref="DRAWINGS">FIGS. 37-41</figref>.
0204Penetration measurement can be carried out by a variety of methods that are not dependent on measurement of tenting of the patient's skin. In one embodiment, the penetration depth of the lancet <b>183</b> in the patient's skin <b>233</b> is measured by monitoring the amount of capacitance between the lancet <b>183</b> and the patient's skin <b>233</b>. In this embodiment, a circuit includes the lancet <b>183</b>, the patient's finger <b>234</b>, the processor <b>193</b> and electrical conductors connecting these elements. As the lancet <b>183</b> penetrates the patient's skin <b>233</b>, the greater the amount of penetration, the greater the surface contact area between the lancet <b>183</b> and the patient's skin <b>233</b>. As the contact area increases, so does the capacitance between the skin <b>233</b> and the lancet <b>183</b>. The increased capacitance can be easily measured by the processor <b>193</b> using methods known in the art and penetration depth can then be correlated to the amount of capacitance. The same method can be used by measuring the electrical resistance between the lancet <b>183</b> and the patient's skin.
0205If the brake depth has not yet been reached, then a “No” results from the decision box <b>271</b> and the process proceeds to the timeout operation represented by the flow diagram box numbered <b>273</b>. In the timeout operation, the processor <b>193</b> waits a predetermined time period. If the timeout period has not yet elapsed (a “No” outcome from the decision box <b>273</b>), then the processor continues to monitor whether the brake depth has been reached. If the timeout period elapses without the lancet <b>183</b> achieving the brake depth (a “Yes” output from the decision box <b>273</b>), then the processor <b>193</b> deems that the lancet <b>183</b> will not reach the brake depth and the process proceeds to the withdraw phase, which is discussed more fully below. This may occur, for example, if the lancet <b>183</b> is stuck at a certain depth.
0206With reference again to the decision box numbered <b>271</b> in <figref idref="DRAWINGS">FIG. 29B</figref>, if the lancet does reach the brake depth (a “Yes” result), then the process proceeds to the operation represented by the flow diagram box numbered <b>275</b>. In this operation, the processor <b>193</b> causes a braking force to be applied to the lancet to thereby reduce the speed of the lancet <b>183</b> to achieve a desired amount of final skin penetration depth <b>244</b>, as shown in <figref idref="DRAWINGS">FIG. 26</figref>. Note that <figref idref="DRAWINGS">FIGS. 32 and 33</figref> illustrate the lancet making contact with the patient's skin and deforming or depressing the skin prior to any substantial penetration of the skin. The speed of the lancet <b>183</b> is preferably reduced to a value below a desired threshold and is ultimately reduced to zero. The processor <b>193</b> can reduce the speed of the lancet <b>183</b> by causing a current to be sent to a <b>214</b>-<b>217</b> coil that will exert an attractive braking force on the magnetic member <b>202</b> in a proximal direction away from the patient's tissue or skin <b>233</b>, as indicated by the arrow <b>290</b> in <figref idref="DRAWINGS">FIG. 36</figref>. Such a negative force reduces the forward or distally oriented speed of the lancet <b>183</b>. The processor <b>193</b> can determine which coil <b>214</b>-<b>217</b> to energize based upon the position of the magnetic member <b>202</b> with respect to the coils <b>214</b>-<b>217</b> of the driver coil pack <b>188</b>, as indicated by the position sensor <b>191</b>.
0207In the next operation, the process proceeds to the withdraw phase, as represented by the flow diagram box numbered <b>277</b>. The withdraw phase begins with the operation represented by the flow diagram box numbered <b>279</b> in <figref idref="DRAWINGS">FIG. 29C</figref>. Here, the processor <b>193</b> allows the lancet <b>183</b> to settle at a position of maximum skin penetration <b>244</b>, as shown in <figref idref="DRAWINGS">FIG. 35</figref>. In this regard, the processor <b>193</b> waits until any motion in the lancet <b>183</b> (due to vibration from impact and spring energy stored in the skin, etc.) has stopped by monitoring changes in position of the lancet <b>183</b>. The processor <b>193</b> preferably waits until several milliseconds (ms), such as on the order of about 8 ms, have passed with no changes in position of the lancet <b>183</b>. This is an indication that movement of the lancet <b>183</b> has ceased entirely. In some embodiments, the lancet may be allowed to settle for about 1 to about 2000 milliseconds, specifically, about 50 to about 200 milliseconds. For other embodiments, the settling time may be about 1 to about 200 milliseconds.
0208It is at this stage of the lancing cycle that a software method can be used to measure the amount of tenting of the patient's skin <b>233</b> and thus determine the skin <b>233</b> characteristics such as elasticity, hydration and others. Referring to <figref idref="DRAWINGS">FIGS. 37-41</figref>, a lancet <b>183</b> is illustrated in various phases of a lancing cycle with target tissue <b>233</b>. <figref idref="DRAWINGS">FIG. 37</figref> shows tip <b>196</b> of lancet <b>183</b> making initial contact with the skin <b>233</b> at the point of initial impact.
0209<figref idref="DRAWINGS">FIG. 38</figref> illustrates an enlarged view of the lancet <b>183</b> making initial contact with the tissue <b>233</b> shown in <figref idref="DRAWINGS">FIG. 37</figref>. In <figref idref="DRAWINGS">FIG. 39</figref>, the lancet tip <b>196</b> has depressed or tented the skin <b>233</b> prior to penetration over a distance of X, as indicated by the arrow labeled X in <figref idref="DRAWINGS">FIG. 39</figref>. In <figref idref="DRAWINGS">FIG. 40</figref>, the lancet <b>183</b> has reached the full length of the cutting power stroke and is at maximum displacement. In this position, the lancet tip <b>196</b> has penetrated the tissue <b>233</b> a distance of Y, as indicated by the arrow labeled Y in <figref idref="DRAWINGS">FIG. 39</figref>. As can be seen from comparing <figref idref="DRAWINGS">FIG. 38</figref> with <figref idref="DRAWINGS">FIG. 40</figref>, the lancet tip <b>196</b> was displaced a total distance of X plus Y from the time initial contact with the skin <b>233</b> was made to the time the lancet tip <b>196</b> reached its maximum extension as shown in FIG. <b>40</b>. However, the lancet tip <b>196</b> has only penetrated the skin <b>233</b> a distance Y because of the tenting phenomenon.
0210At the end of the power stroke of the lancet <b>183</b>, as discussed above with regard to <figref idref="DRAWINGS">FIG. 26</figref> and box <b>279</b> of <figref idref="DRAWINGS">FIG. 29C</figref>, the processor <b>193</b> allows the lancet to settle for about 8 msec. It is during this settling time that the skin <b>233</b> rebounds or relaxes back to approximately its original configuration prior to contact by the lancet <b>183</b> as shown in <figref idref="DRAWINGS">FIG. 41</figref>. The lancet tip <b>196</b> is still buried in the skin to a depth of Y, as shown in <figref idref="DRAWINGS">FIG. 41</figref>, however the elastic recoil of the tissue has displaced the lancet rearward or retrograde to the point of inelastic tenting that is indicated by the arrows Z in <figref idref="DRAWINGS">FIG. 41</figref>. During the rearward displacement of the lancet <b>183</b> due to the elastic tenting of the tissue <b>233</b>, the processor reads and stores the position data generated by the position sensor <b>191</b> and thus measures the amount of elastic tenting, which is the difference between X and Z.
0211The tenting process and retrograde motion of the lancet <b>183</b> during the lancing cycle is illustrated graphically in <figref idref="DRAWINGS">FIG. 42</figref> which shows both a velocity versus time graph and a position versus time graph of a lancet tip <b>196</b> during a lancing cycle that includes elastic and inelastic tenting. In <figref idref="DRAWINGS">FIG. 42</figref>, from point <b>0</b> to point A, the lancet <b>183</b> is being accelerated from the initialization position or zero position. From point A to point B, the lancet is in ballistic or coasting mode, with no additional power being delivered. At point B, the lancet tip <b>196</b> contacts the tissue <b>233</b> and begins to tent the skin <b>233</b> until it reaches a displacement C. As the lancet tip <b>196</b> approaches maximum displacement, braking force is applied to the lancet <b>183</b> until the lancet comes to a stop at point D. The lancet <b>183</b> then recoils in a retrograde direction during the settling phase of the lancing cycle indicated between D and E. Note that the magnitude of inelastic tenting indicated in <figref idref="DRAWINGS">FIG. 42</figref> is exaggerated for purposes of illustration.
0212The amount of inelastic tenting indicated by Z tends to be fairly consistent and small compared to the magnitude of the elastic tenting. Generally, the amount of inelastic tenting Z can be about 120 to about 140 microns. As the magnitude of the inelastic tenting has a fairly constant value and is small compared to the magnitude of the elastic tenting for most patients and skin types, the value for the total amount of tenting for the penetration stroke of the lancet <b>183</b> is effectively equal to the rearward displacement of the lancet during the settling phase as measured by the processor <b>193</b> plus a predetermined value for the inelastic recoil, such as 130 microns. Inelastic recoil for some embodiments can be about 100 to about 200 microns. The ability to measure the magnitude of skin <b>233</b> tenting for a patient is important to controlling the depth of penetration of the lancet tip <b>196</b> as the skin is generally known to vary in elasticity and other parameters due to age, time of day, level of hydration, gender and pathological state.
0213This value for total tenting for the lancing cycle can then be used to determine the various characteristics of the patient's skin <b>233</b>. Once a body of tenting data is obtained for a given patient, this data can be analyzed in order to predict the total lancet displacement, from the point of skin contact, necessary for a successful lancing procedure. This enables the tissue penetration device to achieve a high success rate and minimize pain for the user. A rolling average table can be used to collect and store the tenting data for a patient with a pointer to the last entry in the table. When a new entry is input, it can replace the entry at the pointer and the pointer advances to the next value. When an average is desired, all the values are added and the sum divided by the total number of entries by the processor <b>193</b>. Similar techniques involving exponential decay (multiply by 0.95, add 0.05 times current value, etc.) are also possible.
0214With regard to tenting of skin <b>233</b> generally, some typical values relating to penetration depth are now discussed. <figref idref="DRAWINGS">FIG. 43</figref> shows a cross sectional view of the layers of the skin <b>233</b>. In order to reliably obtain a useable sample of blood from the skin <b>233</b>, it is desirable to have the lancet tip <b>196</b> reach the venuolar plexus of the skin. The stratum corneum is typically about 0.1 to about 0.6 mm thick and the distance from the top of the dermis to the venuole plexus can be from about 0.3 to about 1.4 mm. Elastic tenting can have a magnitude of up to about 2 mm or so, specifically, about 0.2 to about 2.0 mm, with an average magnitude of about 1 mm. This means that the amount of lancet displacement necessary to overcome the tenting can have a magnitude greater than the thickness of skin necessary to penetrate in order to reach the venuolar plexus. The total lancet displacement from point of initial skin contact may have an average value of about 1.7 to about 2.1 mm. In some embodiments, penetration depth and maximum penetration depth may be about 0.5 mm to about 5 mm, specifically, about 1 mm to about 3 mm. In some embodiments, a maximum penetration depth of about 0.5 to about 3 mm is useful.
0215Referring back to <figref idref="DRAWINGS">FIG. 29C</figref>, in the next operation, represented by the flow diagram box numbered <b>280</b> in <figref idref="DRAWINGS">FIG. 29C</figref>, the processor <b>193</b> causes a withdraw force to be exerted on the lancet <b>183</b> to retract the lancet <b>183</b> from the skin <b>233</b>, as shown by arrow <b>290</b> in <figref idref="DRAWINGS">FIG. 36</figref> The processor <b>193</b> sends a current to an appropriate coil <b>214</b>-<b>217</b> so that the coil <b>214</b>-<b>217</b> exerts an attractive distally oriented force on the magnetic member <b>202</b>, which should cause the lancet <b>183</b> to move backward in the desired direction. In some embodiments, the lancet <b>183</b> is withdrawn with less force and a lower speed than the force and speed during the penetration portion of the operation cycle. Withdrawal speed of the lancet in some embodiments can be about 0.004 to about 0.5 m/s, specifically, about 0.006 to about 0.01 m/s. In other embodiments, useful withdrawal velocities can be about 0.001 to about 0.02 meters per second, specifically, about 0.001 to about 0.01 meters per second. For embodiments that use a relatively slow withdrawal velocity compared to the penetration velocity, the withdrawal velocity may up to about 0.02 meters per second. For such embodiments, a ratio of the average penetration velocity relative to the average withdrawal velocity can be about 100 to about 1000. In embodiments where a relatively slow withdrawal velocity is not important, a withdrawal velocity of about 2 to about 10 meters per second may be used.
0216In the next operation, the processor <b>193</b> determines whether the lancet <b>183</b> is moving in the desired backward direction as a result of the force applied, as represented by the decision box numbered <b>281</b>. If the processor <b>193</b> determines that the lancet <b>183</b> is not moving (a “No” result from the decision box <b>281</b>), then the processor <b>193</b> continues to cause a force to be exerted on the lancet <b>183</b>, as represented by the flow diagram box numbered <b>282</b>. The processor <b>193</b> may cause a stronger force to be exerted on the lancet <b>183</b> or may just continue to apply the same amount of force. The processor then again determines whether the lancet is moving, as represented by the decision box numbered <b>283</b>. If movement is still not detected (a “No” result from the decision box numbered <b>283</b>), the processor <b>193</b> determines that an error condition is present, as represented by the flow diagram box numbered <b>284</b>. In such a situation, the processor preferably de-energizes the coils to remove force from the lancet, as the lack of movement may be an indication that the lancet is stuck in the skin of the patient and, therefore, that it may be undesirable to continue to attempt pull the lancet out of the skin.
0217With reference again to the decision boxes numbered <b>281</b> and <b>283</b> in <figref idref="DRAWINGS">FIG. 29C</figref>, if the processor <b>193</b> determines that the lancet is indeed moving in the desired backward direction away from the skin <b>233</b>, then the process proceeds to the operation represented by the flow diagram box numbered <b>285</b>. In this operation, the backward movement of the lancet <b>183</b> continues until the lancet distal end has been completely withdrawn from the patient's skin <b>233</b>. As discussed above, in some embodiments the lancet <b>183</b> is withdrawn with less force and a lower speed than the force and speed during the penetration portion of the operation cycle. The relatively slow withdrawal of the lancet <b>183</b> may allow the blood from the capillaries of the patient accessed by the lancet <b>183</b> to follow the lancet <b>183</b> during withdrawal and reach the skin surface to reliably produce a usable blood sample. The process then ends.
0218Controlling the lancet motion over the operating cycle of the lancet <b>183</b> as discussed above allows a wide variety of lancet velocity profiles to be generated by the lancing device <b>180</b>. In particular, any of the lancet velocity profiles discussed above with regard to other embodiments can be achieved with the processor <b>193</b>, position sensor <b>191</b> and driver coil pack <b>188</b> of the lancing device <b>180</b>.
0219Another example of an embodiment of a velocity profile for a lancet can be seen in <figref idref="DRAWINGS">FIGS. 44 and 45</figref>, which illustrates a lancet profile with a fast entry velocity and a slow withdrawal velocity. <figref idref="DRAWINGS">FIG. 44</figref> illustrates an embodiment of a lancing profile showing velocity of the lancet versus position. The lancing profile starts at zero time and position and shows acceleration of the lancet towards the tissue from the electromagnetic force generated from the electromagnetic driver. At point A, the power is shut off and the lancet <b>183</b> begins to coast until it reaches the skin <b>233</b> indicated by B at which point, the velocity begins to decrease. At point C, the lancet <b>183</b> has reached maximum displacement and settles momentarily, typically for a time of about 8 milliseconds.
0220A retrograde withdrawal force is then imposed on the lancet by the controllable driver, which is controlled by the processor to maintain a withdrawal velocity of no more than about 0.006 to about 0.01 meters/second. The same cycle is illustrated in the velocity versus time plot of <figref idref="DRAWINGS">FIG. 45</figref> where the lancet is accelerated from the start point to point A. The lancet <b>183</b> coasts from A to B where the lancet tip <b>196</b> contacts tissue <b>233</b>. The lancet tip <b>196</b> then penetrates the tissue and slows with braking force eventually applied as the maximum penetration depth is approached. The lancet is stopped and settling between C and D. At D, the withdrawal phase begins and the lancet <b>183</b> is slowly withdrawn until it returns to the initialization point shown by E in <figref idref="DRAWINGS">FIG. 45</figref>. Note that retrograde recoil from elastic and inelastic tenting was not shown in the lancing profiles of <figref idref="DRAWINGS">FIGS. 44 and 45</figref> for purpose of illustration and clarity.
0221In another embodiment, the withdrawal phase may use a dual speed profile, with the slow 0.006 to 0.01 meter per second speed used until the lancet is withdrawn past the contact point with the tissue, then a faster speed of 0.01 to 1 meters per second may be used to shorten the complete cycle.
0222Referring to <figref idref="DRAWINGS">FIG. 46</figref>, another embodiment of a lancing device including a controllable driver <b>294</b> with a driver coil pack <b>295</b>, position sensor and lancet <b>183</b> are shown. The lancet <b>297</b> has a proximal end <b>298</b> and a distal end <b>299</b> with a sharpened point at the distal end <b>299</b> of the lancet <b>297</b>. A magnetic member <b>301</b> disposed about and secured to a proximal end portion <b>302</b> of the lancet <b>297</b> with a lancet shaft <b>303</b> being disposed between the magnetic member <b>301</b> and the sharpened point <b>299</b>. The lancet shaft <b>303</b> may be comprised of stainless steel, or any other suitable material or alloy. The lancet shaft <b>303</b> may have a length of about 3 mm to about 50 mm specifically, about 5 mm to about 15 mm.
0223The magnetic member <b>301</b> is configured to slide within an axial lumen <b>304</b> of the driver coil pack <b>295</b>. The driver coil pack <b>295</b> includes a most distal first coil <b>305</b>, a second coil <b>306</b>, which is axially disposed between the first coil <b>305</b> and a third coil <b>307</b>, and a proximal-most fourth coil <b>308</b>. Each of the first coil <b>305</b>, second coil <b>306</b>, third coil <b>307</b> and fourth coil <b>308</b> has an axial lumen. The axial lumens of the first through fourth coils <b>305</b>-<b>308</b> are configured to be coaxial with the axial lumens of the other coils and together form the axial lumen <b>309</b> of the driver coil pack <b>295</b> as a whole. Axially adjacent each of the coils <b>305</b>-<b>308</b> is a magnetic disk or washer <b>310</b> that augments completion of the magnetic circuit of the coils <b>305</b>-<b>308</b> during a lancing cycle of the driven coil pack <b>295</b>. The magnetic washers <b>310</b> of the embodiment of <figref idref="DRAWINGS">FIG. 46</figref> are made of ferrous steel but could be made of any other suitable magnetic material, such as iron or ferrite. The magnetic washers <b>310</b> have an outer diameter commensurate with an outer diameter of the driver coil pack <b>295</b> of about 4.0 to about 8.0 mm. The magnetic washers <b>310</b> have an axial thickness of about 0.05, to about 0.4 mm, specifically, about 0.15 to about 0.25 mm. The outer shell <b>294</b> of the coil pack is also made of iron or steel to complete the magnetic path around the coils and between the washers <b>310</b>.
0224Wrapping or winding an elongate electrical conductor <b>311</b> about the axial lumen <b>309</b> until a sufficient number of windings have been achieved forms the coils <b>305</b>-<b>308</b>. The elongate electrical conductor <b>311</b> is generally an insulated solid copper wire. The particular materials, dimensions number of coil windings etc. of the coils <b>305</b>-<b>308</b>, washers <b>310</b> and other components of the driver coil pack <b>295</b> can be the same or similar to the materials, dimensions number of coil windings etc. of the driver coil pack <b>188</b> discussed above.
0225Electrical conductors <b>312</b> couple the driver coil pack <b>295</b> with a processor <b>313</b> which can be configured or programmed to control the current flow in the coils <b>305</b>-<b>308</b> of the driver coil pack <b>295</b> based on position feedback from the position sensor <b>296</b>, which is coupled to the processor <b>313</b> by electrical conductors <b>315</b>. A power source <b>316</b> is electrically coupled to the processor <b>313</b> and provides electrical power to operate the processor <b>313</b> and power the driver coil pack <b>295</b>. The power source <b>316</b> may be one or more batteries (not shown) that provide direct current power to the processor <b>313</b> as discussed above.
0226The position sensor <b>296</b> is an analog reflecting light sensor that has a light source and light receiver in the form of a photo transducer <b>317</b> disposed within a housing <b>318</b> with the housing <b>318</b> secured in fixed spatial relation to the driver coil pack <b>295</b>. A reflective member <b>319</b> is disposed on or secured to a proximal end <b>320</b> of the magnetic member <b>301</b>. The processor <b>313</b> determines the position of the lancet <b>299</b> by first emitting light from the light source of the photo transducer <b>317</b> towards the reflective member <b>319</b> with a predetermined solid angle of emission. Then, the light receiver of the photo transducer <b>317</b> measures the intensity of light reflected from the reflective member <b>319</b> and electrical conductors <b>315</b> transmit the signal generated therefrom to the processor <b>313</b>.
0227By calibrating the intensity of reflected light from the reflective member <b>319</b> for various positions of the lancet <b>297</b> during the operating cycle of the driver coil pack <b>295</b>, the position of the lancet <b>297</b> can thereafter be determined by measuring the intensity of reflected light at any given moment. In one embodiment, the sensor <b>296</b> uses a commercially available LED/photo transducer module such as the OPB703 manufactured by Optek Technology, Inc., 1215 W. Crosby Road, Carrollton, Tex., 75006. This method of analog reflective measurement for position sensing can be used for any of the embodiments of lancet actuators discussed herein. In addition, any of the lancet actuators or drivers that include coils may use one or more of the coils to determine the position of the lancet <b>297</b> by using a magnetically permeable region on the lancet shaft <b>303</b> or magnetic member <b>301</b> itself as the core of a Linear Variable Differential Transformer (LVDT).
0228Referring to <figref idref="DRAWINGS">FIGS. 47 and 48</figref>, a flat coil lancet driver <b>325</b> is illustrated which has a main body housing <b>326</b> and a rotating frame <b>327</b>. The rotating frame <b>327</b> pivots about an axle <b>328</b> disposed between a base <b>329</b>, a top body portion <b>330</b> of the main body housing <b>326</b> and disposed in a pivot guide <b>331</b> of the rotating frame <b>327</b>. An actuator arm <b>332</b> of the rotating frame <b>327</b> extends radially from the pivot guide <b>331</b> and has a linkage receiving opening <b>333</b> disposed at an outward end <b>334</b> of the actuator arm <b>332</b>. A first end <b>335</b> of a coupler linkage <b>336</b> is coupled to the linkage receiving opening <b>333</b> of the actuator arm <b>332</b> and can rotate within the linkage receiving opening <b>333</b>. A second end <b>337</b> of the coupler linkage <b>336</b> is disposed within an opening at a proximal end <b>338</b> of a coupler translation member <b>341</b>. This configuration allows circumferential forces imposed upon the actuator arm <b>332</b> to be transferred into linear forces on a drive coupler <b>342</b> secured to a distal end <b>343</b> of the coupler translation member <b>341</b>. The materials and dimensions of the drive coupler <b>342</b> can be the same or similar to the materials and dimensions of the drive coupler <b>342</b> discussed above.
0229Opposite the actuator arm <b>332</b> of the rotating frame <b>327</b>, a translation substrate in the form of a coil arm <b>344</b> extends radially from the pivot guide <b>331</b> of the rotating frame <b>327</b>. The coil arm <b>344</b> is substantially triangular in shape. A flat coil <b>345</b> is disposed on and secured to the coil arm <b>344</b>. The flat coil <b>345</b> has leading segment <b>346</b> and a trailing segment <b>347</b>, both of which extend substantially orthogonal to the direction of motion of the segments <b>346</b> and <b>347</b> when the rotating frame <b>327</b> is rotating about the pivot guide <b>331</b>. The leading segment <b>346</b> is disposed within a first magnetically active region <b>348</b> generated by a first upper permanent magnet <b>349</b> secured to an upper magnet base <b>351</b> and a first lower permanent magnet <b>352</b> secured to a lower magnet base <b>353</b>. The trailing segment <b>347</b> is disposed within a second magnetically active region <b>354</b> generated by a second upper permanent magnet <b>355</b> secured to the upper magnet base <b>351</b> and a second lower permanent magnet secured to the lower magnet base <b>353</b>.
0230The magnetic field lines or circuit of the first upper and lower permanent magnets <b>349</b>, <b>352</b>, <b>355</b> and <b>356</b> can be directed upward from the first lower permanent magnet <b>352</b> to the first upper permanent magnet <b>349</b> or downward in an opposite direction. The magnetic field lines from the second permanent magnets <b>355</b> and <b>356</b> are also directed up or down, and will have a direction opposite to that of the first upper and lower permanent magnets <b>349</b> and <b>352</b>. This configuration produces rotational force on the coil arm <b>344</b> about the pivot guide <b>331</b> with the direction of the force determined by the direction of current flow in the flat coil <b>345</b>. As seen in <figref idref="DRAWINGS">FIGS. 47 and 48</figref>, the movable member <b>327</b> is not fully enclosed, encircled, or surrounded by the magnets <b>349</b>, <b>353</b>, <b>355</b>, and <b>356</b>. It should be understood that in other embodiments, the configuration may be altered such that the movable member <b>327</b> contains a magnet and coils take the place of items <b>349</b>, <b>353</b>, <b>355</b>, and <b>356</b> in those positions. Thus, the coil is a flat coil that does not fully enclose the movable member.
0231A position sensor <b>357</b> includes an optical encoder disk section <b>358</b> is secured to the rotating frame <b>327</b> which rotates with the rotating frame <b>327</b> and is read by an optical encoder <b>359</b> which is secured to the base <b>329</b>. The position sensor <b>357</b> determines the rotational position of the rotating frame <b>327</b> and sends the position information to a processor <b>360</b> which can have features which are the same or similar to the features of the processor <b>193</b> discussed above via electrical leads <b>361</b>. Electrical conductor leads <b>363</b> of the flat coil <b>345</b> are also electrically coupled to the processor <b>360</b>.
0232As electrical current is passed through the leading segment <b>346</b> and trailing segment <b>347</b> of the flat coil <b>345</b>, the rotational forces imposed on the segments <b>346</b> and <b>347</b> are transferred to the rotating frame <b>327</b> to the actuator arm <b>332</b>, through the coupler linkage <b>336</b> and coupler translation member <b>341</b> and eventually to the drive coupler <b>342</b>. In use, a lancet (not shown) is secured into the drive coupler <b>342</b>, and the flat coil lancet actuator <b>325</b> activated. The electrical current in the flat coil <b>345</b> determines the forces generated on the drive coupler <b>342</b>, and hence, a lancet secured to the coupler <b>342</b>. The processor <b>360</b> controls the electrical current in the flat coil <b>345</b> based on the position and velocity of the lancet as measured by the position sensor <b>357</b> information sent to the processor <b>360</b>. The processor <b>360</b> is able to control the velocity of a lancet in a manner similar to the processor <b>193</b> discussed above and can generate any of the desired lancet velocity profiles discussed above, in addition to others.
0233<figref idref="DRAWINGS">FIGS. 49 and 50</figref> depict yet another embodiment of a controlled driver <b>369</b> having a driver coil pack <b>370</b> for a tissue penetration device. The driver coil pack <b>370</b> has a proximal end <b>371</b>, a distal end <b>372</b> and an axial lumen <b>373</b> extending from the proximal end <b>371</b> to the distal end <b>372</b>. An inner coil <b>374</b> is disposed about the axial lumen <b>373</b> and has a tapered configuration with increasing wraps per inch of an elongate conductor <b>375</b> in a distal direction. The inner coil <b>374</b> extends from the proximal end <b>371</b> of the coil driver pack <b>370</b> to the distal end <b>372</b> of the driver coil pack <b>370</b> with a major outer diameter or transverse dimension of about 1 to about 25 mm, specifically about 1 to about 12 mm.
0234The outer diameter or transverse dimension of the inner coil <b>374</b> at the proximal end <b>371</b> of the driver coil pack <b>370</b> is approximately equal to the diameter of the axial lumen <b>373</b> at the proximal end <b>371</b> of the coil pack <b>370</b>. That is, the inner coil <b>374</b> tapers to a reduce outer diameter proximally until there are few or no wraps of elongate electrical conductor <b>375</b> at the proximal end <b>371</b> of the driver coil pack <b>370</b>. The tapered configuration of the inner coil <b>374</b> produces an axial magnetic field gradient within the axial lumen <b>373</b> of the driver coil pack <b>370</b> when the inner coil <b>374</b> is activated with electrical current flowing through the elongate electrical conductor <b>375</b> of the inner coil <b>374</b>.
0235The axial magnetic field gradient produces a driving force for a magnetic member <b>376</b> disposed within the axial lumen <b>373</b> that drives the magnetic member <b>376</b> towards the distal end <b>372</b> of the driver coil pack <b>370</b> when the inner coil <b>374</b> is activated. The driving force on the magnetic member produced by the inner coil <b>374</b> is a smooth continuous force, which can produce a smooth and continuous acceleration of the magnetic member <b>376</b> and lancet <b>377</b> secured thereto. In some embodiments, the ratio of the increase in outer diameter versus axial displacement along the inner coil <b>374</b> in a distal direction can be from about 1 to about 0.08, specifically, about 1 to about 0.08.
0236An outer coil <b>378</b> is disposed on and longitudinally coextensive with the inner coil <b>374</b>. The outer coil <b>378</b> can have the same or similar dimensions and construction as the inner coil <b>374</b>, except that the outer coil <b>378</b> tapers proximally to an increased diameter or transverse dimension. The greater wraps per inch of elongate electrical conductor <b>379</b> in a proximal direction for the outer coil <b>378</b> produces a magnetic field gradient that drives the magnetic member <b>376</b> in a proximal direction when the outer coil <b>378</b> is activated with electrical current. This produces a braking or reversing effect on the magnetic member <b>376</b> during an operational cycle of the lancet <b>377</b> and driver coil pack <b>370</b>. The elongate electrical conductors <b>375</b> and <b>379</b> of the inner coil <b>374</b> and outer coil <b>378</b> are coupled to a processor <b>381</b>, which is coupled to an electrical power source <b>382</b>. The processor <b>381</b> can have properties similar to the other processors discussed above and can control the velocity profile of the magnetic member <b>376</b> and lancet <b>377</b> to produce any of the velocity profiles above as well as others. The driver coil pack <b>370</b> can be used as a substitute for the coil driver pack discussed above, with other components of the lancing device <b>180</b> being the same or similar.
0237Embodiments of driver or actuator mechanisms having been described, we now discuss embodiments of devices which can house lancets, collect samples of fluids, analyze the samples or any combination of these functions. These front-end devices may be integrated with actuators, such as those discussed above, or any other suitable driver or controllable driver.
0238Generally, most known methods of blood sampling require several steps. First, a measurement session is set up by gathering various articles such as lancets, lancet drivers, test strips, analyzing instrument, etc. Second, the patient must assemble the paraphernalia by loading a sterile lancet, loading a test strip, and arming the lancet driver. Third, the patient must place a finger against the lancet driver and using the other hand to activate the driver. Fourth, the patient must put down the lancet driver and place the bleeding finger against a test strip, (which may or may not have been loaded into an analyzing instrument). The patient must insure blood has been loaded onto the test strip and the analyzing instrument has been calibrated prior to such loading. Finally, the patient must dispose of all the blood-contaminated paraphernalia including the lancet. As such, integrating the lancing and sample collection features of a tissue penetration sampling device can achieve advantages with regard to patient convenience.
0239<figref idref="DRAWINGS">FIG. 51</figref> shows a disposable sampling module <b>410</b>, which houses the lancet <b>412</b>. The lancet <b>412</b> has a head on a proximal end <b>416</b> which connects to the driver <b>438</b> and a distal end <b>414</b>, which lances the skin. The distal end <b>414</b> is disposed within the conduit <b>418</b>. The proximal end <b>416</b> extends into the cavity <b>420</b>. The sample reservoir <b>422</b> has a narrow input port <b>424</b> on the ergonomically contoured surface <b>426</b>, which is adjacent to the distal end <b>414</b> of the lancet <b>412</b>. The term ergonomically contoured, as used herein, generally means shaped to snugly fit a finger or other body portion to be lanced or otherwise tested placed on the surface. The sampling module <b>410</b> is capable of transporting the blood sample from the sample reservoir <b>422</b> through small passages (not shown), to an analytical region <b>428</b>. The analytical region <b>428</b> can include chemical, physical, optical, electrical or other means of analyzing the blood sample. The lancet, sample flow channel, sample reservoir and analytical region are integrated into the sampling module <b>410</b> in a single packaged unit.
0240<figref idref="DRAWINGS">FIG. 52</figref> shows the chamber <b>430</b> in the housing <b>410</b>′ where the sampling module <b>410</b> is loaded. The sampling module <b>410</b> is loaded on a socket <b>432</b> suspended with springs <b>434</b> and sits in slot <b>436</b>. A driver <b>438</b> is attached to the socket <b>432</b>. The driver <b>438</b> has a proximal end <b>440</b> and a distal end <b>442</b>. The driver <b>438</b> can be either a controllable driver or non-controllable driver any mechanical, such as spring or cam driven, or electrical, such as electromagnetically or electronically driven, means for advancing, stopping, and retracting the lancet. There is a clearance <b>444</b> between the distal end <b>442</b> of the driver <b>438</b> and the sensor <b>446</b>, which is attached to the chamber <b>430</b>. The socket <b>432</b> also contains an analyzer <b>448</b>, which is a system for analyzing blood. The analyzer <b>448</b> corresponds to the analytical region <b>428</b> on the module <b>410</b> when it is loaded into the socket <b>432</b>.
0241<figref idref="DRAWINGS">FIG. 53</figref> shows a tissue penetration sampling device <b>411</b> with the sampling module <b>410</b> loaded into the socket <b>432</b> of housing <b>410</b>′. The analytical region <b>428</b> and analyzer <b>448</b> overlap. The driver <b>438</b> fits into the cavity <b>420</b>. The proximal end <b>440</b> of the driver <b>438</b> abuts the distal end <b>416</b> of the lancet <b>412</b>. The patient's finger <b>450</b> sits on the ergonomically contoured surface <b>426</b>.
0242<figref idref="DRAWINGS">FIG. 54</figref> shows a drawing of an alternate lancet configuration where the lancet <b>412</b> and driver <b>438</b> are oriented to lance the side of the finger <b>450</b> as it sits on the ergonomically contoured surface <b>426</b>.
0243<figref idref="DRAWINGS">FIG. 55</figref> illustrates the orifice <b>452</b> and ergonomically contoured surface <b>426</b>. The conduit <b>418</b> has an orifice <b>452</b>, which opens on a blood well <b>454</b>. The sample input port <b>424</b> of the reservoir <b>422</b> also opens on the blood well <b>454</b>. The diameter of the sample input port <b>424</b> is significantly greater than the diameter of the orifice <b>452</b>, which is substantially the same diameter as the diameter of the lancet <b>412</b>. After the lancet is retracted, the blood flowing from the finger <b>450</b> will collect in the blood well <b>454</b>. The lancet <b>412</b> will have been retracted into the orifice <b>452</b> effectively blocking the passage of blood down the orifice <b>452</b>. The blood will flow from the blood well <b>454</b> through the sample input port <b>424</b> into the reservoir <b>422</b>.
0244<figref idref="DRAWINGS">FIG. 56</figref> shows a drawing of the lancing event. The patient applies pressure by pushing down with the finger <b>450</b> on the ergonomically contoured surface <b>426</b>. This applies downward pressure on the sampling module <b>410</b>, which is loaded into the socket <b>432</b>. As the socket <b>432</b> is pushed downward it compresses the springs <b>434</b>. The sensor <b>446</b> makes contact with the distal end <b>442</b> of the driver <b>438</b> and thereby electrically detects the presence of the finger on the ergonomically contoured surface. The sensor can be a piezoelectric device, which detects this pressure and sends a signal to circuit <b>456</b>, which actuates the driver <b>438</b> and advances and then retracts the lancet <b>412</b> lancing the finger <b>450</b>. In another embodiment, the sensor <b>446</b> is an electric contact, which closes a circuit when it contacts the driver <b>438</b> activating the driver <b>438</b> to advance and retract the lancet <b>412</b> lancing the finger <b>450</b>.
0245An embodiment of a method of sampling includes a reduced number of steps that must be taken by a patient to obtain a sample and analysis of the sample. First, the patient loads a sampling module <b>410</b> with an embedded sterile lancet into the housing device <b>410</b>′. Second, the patient initiates a lancing cycle by turning on the power to the device or by placing the finger to be lanced on the ergonomically contoured surface <b>426</b> and pressing down. Initiation of the sensor makes the sensor operational and gives control to activate the launcher.
0246The sensor is unprompted when the lancet is retracted after its lancing cycle to avoid unintended multiple lancing events. The lancing cycle consists of arming, advancing, stopping and retracting the lancet, and collecting the blood sample in the reservoir. The cycle is complete once the blood sample has been collected in the reservoir. Third, the patient presses down on the sampling module, which forces the driver <b>38</b> to make contact with the sensor, and activates the driver <b>438</b>. The lancet then pierces the skin and the reservoir collects the blood sample.
0247The patient is then optionally informed to remove the finger by an audible signal such as a buzzer or a beeper, and/or a visual signal such as an LED or a display screen. The patient can then dispose of all the contaminated parts by removing the sampling module <b>410</b> and disposing of it. In another embodiment, multiple sampling modules <b>410</b> may be loaded into the housing <b>410</b>′ in the form of a cartridge (not shown). The patient can be informed by the tissue penetration sampling device <b>411</b> as to when to dispose of the entire cartridge after the analysis is complete.
0248In order to properly analyze a sample in the analytical region <b>428</b> of the sampling module <b>410</b>, it may be desirable or necessary to determine whether a fluid sample is present in a given portion of the sample flow channel, sample reservoir or analytical area. A variety of devices and methods for determining the presence of a fluid in a region are discussed below.
0249In <figref idref="DRAWINGS">FIG. 57</figref>, a thermal sensor <b>500</b> embedded in a substrate <b>502</b> adjacent to a surface <b>504</b> over which a fluid may flow. The surface may be, for example, a wall of a channel through which fluid may flow or a surface of a planar device over which fluid may flow. The thermal sensor <b>500</b> is in electrical communication with a signal-conditioning element <b>506</b>, which may be embedded in the substrate <b>502</b> or may be remotely located. The signal-conditioning element <b>506</b> receives the signal from the thermal sensor <b>500</b> and modifies it by means such as amplifying it and filtering it to reduce noise. <figref idref="DRAWINGS">FIG. 57</figref> also depicts a thermal sensor <b>508</b> located at an alternate location on the surface where it is directly exposed to the fluid flow.
0250<figref idref="DRAWINGS">FIG. 58</figref> shows a configuration of a thermal sensor <b>500</b> adjacent to a separate heating element <b>510</b>. The thermal sensor <b>500</b> and the heating element <b>510</b> are embedded in a substrate <b>502</b> adjacent to a surface <b>504</b> over which a fluid may flow. In an alternate embodiment, one or more additional thermal sensors may be adjacent the heating element and may provide for increased signal sensitivity. The thermal sensor <b>500</b> is in electrical communication with a signal-conditioning element <b>506</b>, which may be embedded in the substrate <b>502</b> or may be remotely located.
0251The signal-conditioning element <b>506</b> receives the signal from the thermal sensor <b>500</b> and modifies it by means such as amplifying it and filtering it to reduce noise. The heating element <b>510</b> is in electrical communication with a power supply and control element <b>512</b>, which may be embedded in the substrate <b>502</b> or may be remotely located. The power supply and control element <b>512</b> provides a controlled source of voltage and current to the heating element <b>510</b>.
0252<figref idref="DRAWINGS">FIG. 59</figref> depicts a configuration of thermal sensors <b>500</b> having three thermal sensor/heating element pairs (<b>500</b>/<b>510</b>), or detector elements, (with associated signal conditioning elements <b>506</b> and power supply and control elements <b>512</b> as described in <figref idref="DRAWINGS">FIG. 58</figref>) embedded in a substrate <b>502</b> near each other alongside a surface <b>504</b>. The figure depicts the thermal sensors <b>500</b> arranged in a linear fashion parallel to the surface <b>504</b>, but any operable configuration may be used. In alternate embodiments, fewer than three or more than three thermal sensor/heating element pairs (<b>500</b>/<b>510</b>) may be used to indicate the arrival of fluid flowing across a surface <b>504</b>. In other embodiments, self-heating thermal sensors are used, eliminating the separate heating elements.
0253Embodiments of the present invention provide a simple and accurate methodology for detecting the arrival of a fluid at a defined location. Such detection can be particularly useful to define the zero- or start-time of a timing cycle for measuring rate-based reactions. This can be used in biochemical assays to detect a variety of analytes present in a variety of types of biological specimens or fluids and for rate-based reactions such as enzymatic reactions. Examples of relevant fluids include, blood, serum, plasma, urine, cerebral spinal fluid, saliva, enzymatic substances and other related substances and fluids that are well known in the analytical and biomedical art. The reaction chemistry for particular assays to analyze biomolecular fluids is generally well known, and selection of the particular assay used will depend on the biological fluid of interest.
0254Assays that are relevant to embodiments of the present invention include those that result in the measurement of individual analytes or enzymes, e.g., glucose, lactate, creatinine kinase, etc, as well as those that measure a characteristic of the total sample, for example, clotting time (coagulation) or complement-dependent lysis. Other embodiments for this invention provide for sensing of sample addition to a test article or arrival of the sample at a particular location within that article.
0255Referring now to <figref idref="DRAWINGS">FIG. 60</figref>, a substrate <b>502</b> defines a channel <b>520</b> having an interior surface <b>522</b> over which fluid may flow. An analysis site <b>524</b> is located within the channel <b>520</b> where fluid flowing in the channel <b>520</b> may contact the analysis site <b>524</b>. In various embodiments, the analysis site <b>524</b> may alternatively be upon the interior surface <b>522</b>, recessed into the substrate <b>502</b>, or essentially flush with the interior surface <b>522</b>. <figref idref="DRAWINGS">FIG. 60</figref>, depicts several possible locations for thermal sensors relative the substrate, the channel, and the analysis site; also, other locations may be useful and will depend upon the design of the device, as will be apparent to those of skill in art.
0256In use, thermal sensors may be omitted from one or more of the locations depicted in <figref idref="DRAWINGS">FIG. 60</figref>, depending on the intended design. A recess in the analysis site <b>524</b> may provide the location for a thermal sensor <b>526</b>, as may the perimeter of the analysis site provide the location for a thermal sensor <b>528</b>. One or more thermal sensors <b>530</b>, <b>532</b>, <b>534</b> may be located on the upstream side of the analysis site <b>524</b> (as fluid flows from right to left in <figref idref="DRAWINGS">FIG. 60</figref>), or one or more thermal sensors <b>536</b>, <b>538</b>, <b>540</b> may be located on the downstream side of the analysis site <b>524</b>.
0257The thermal sensor may be embedded in the substrate near the surface, as thermal sensor <b>542</b> is depicted. In various other embodiments, the thermal sensor(s) may be located upon the interior surface, recessed into the interior surface, or essentially flush with the interior surface. Each thermal sensor may also be associated with a signal conditioning element, heating element, and power supply and control elements, as described above, and a single signal conditioning element, heating element, or power supply and control element may be associated with more than one thermal sensor.
0258<figref idref="DRAWINGS">FIG. 61</figref> shows possible positions for thermal sensors relative to analysis sites <b>524</b> arranged in an array on a surface <b>556</b>. A recess in the analysis site <b>524</b> may provide the location for a thermal sensor <b>544</b>, as may the perimeter of the analysis site provide the location for a thermal sensor <b>546</b>. The edge of the surface surrounding the array of analysis sites may provide the position for one or more thermal sensors <b>548</b>. Thermal sensors may be positioned between analysis sites in a particular row <b>550</b> or column <b>552</b> of the array, or may be arranged on the diagonal <b>554</b>.
0259In various embodiments, the thermal sensor(s) may be may be embedded in the substrate near the surface or may be located upon the surface, recessed into the surface, or essentially flush with the surface. Each thermal sensor may also be associated with a signal conditioning elements, heating elements, and power supply and control elements, as described above, and a single signal conditioning element, heating element, or power supply and control element may be associated with more than one thermal sensor.
0260The use of small thermal sensors can be useful in miniaturized systems, such as microfluidic devices, which perform biomolecular analyses on very small fluid samples. Such analyses generally include passing a biomolecular fluid through, over, or adjacent to an analysis site and result in information about the biomolecular fluid being obtained through the use of reagents and/or test circuits and/or components associated with the analysis site.
0261<figref idref="DRAWINGS">FIG. 62</figref> depicts several possible configurations of thermal sensors relative to channels and analysis sites. The device schematically depicted in <figref idref="DRAWINGS">FIG. 62</figref> may be, e.g., a microfluidic device for analyzing a small volume of a sample fluid, e.g. a biomolecular fluid. The device has a sample reservoir <b>560</b> for holding a quantity of a sample fluid. The sample fluid is introduced to the sample reservoir <b>560</b> via a sample inlet port <b>562</b> in fluid communication with the sample reservoir <b>560</b>. A thermal sensor <b>564</b> is located in or near the sample inlet port <b>562</b>. A primary channel <b>566</b> originates at the sample reservoir <b>560</b> and terminates at an outflow reservoir <b>568</b>.
0262One or more supplemental reservoirs <b>570</b> are optionally present and are in fluid communication with the primary channel <b>566</b> via one or more supplemental channels <b>572</b>, which lead from the supplemental reservoir <b>570</b> to the primary channel <b>566</b>. The supplemental reservoir <b>570</b> functions to hold fluids necessary for the operation of the assay, such as reagent solutions, wash solutions, developer solutions, fixative solutions, et cetera. In the primary channel <b>566</b> at a predetermined distance from the sample reservoir <b>560</b>, an array of analysis sites <b>574</b> is present.
0263Thermal sensors are located directly upstream (as fluid flows from right to left in the figure) from the array <b>576</b> and directly downstream from the array <b>578</b>. Thermal sensors are also located in the primary channel adjacent to where the primary channel originates at the sample reservoir <b>580</b> and adjacent to where the primary channel terminates at the outflow reservoir <b>582</b>. The supplemental channel provides the location for another thermal sensor <b>584</b>.
0264When the device is in operation, the thermal sensor <b>564</b> located in or near the sample inlet port <b>562</b> is used to indicate the arrival of the sample fluid, e.g. the biomolecular fluid, in the local environment of the thermal sensor, as described herein, and thus provides confirmation that the sample fluid has successfully been introduced into the device. The thermal sensor <b>580</b> located in the primary channel <b>566</b> adjacent to where the primary channel <b>566</b> originates at the sample reservoir <b>560</b> produces a signal indicating that sample fluid has started to flow from the sample reservoir <b>560</b> into the primary channel <b>566</b>. The thermal sensors <b>576</b> in the primary channel <b>566</b> just upstream from the array of analysis sites <b>574</b> may be used to indicate that the fluid sample is approaching the array <b>574</b>. Similarly, the thermal sensors <b>578</b> in the primary channel <b>566</b> just downstream from the array of analysis sites <b>574</b> may be used to indicate that the fluid sample has advanced beyond the array <b>574</b> and has thus contacted each analysis site.
0265The thermal sensor <b>584</b> in the supplemental channel <b>572</b> provides confirmation that the fluid contained within the supplemental reservoir <b>570</b> has commenced to flow therefrom. The thermal sensor <b>582</b> in the primary channel <b>566</b> adjacent to where the primary channel <b>566</b> terminates at the outflow reservoir <b>568</b> indicates when sample fluid arrives near the outflow reservoir <b>568</b>, which may then indicate that sufficient sample fluid has passed over the array of analysis sites <b>574</b> and that the analysis at the analysis sites is completed.
0266Embodiments of the invention provide for the use of a thermal sensor to detect the arrival of the fluid sample at a determined region, such as an analysis site, in the local environment of the thermal sensor near the thermal sensor. A variety of thermal sensors may be used. Thermistors are thermally-sensitive resistors whose prime function is to detect a predictable and precise change in electrical resistance when subjected to a corresponding change in temperature Negative Temperature Coefficient (NTC) thermistors exhibit a decrease in electrical resistance when subjected to an increase in temperature and Positive Temperature Coefficient (PTC) thermistors exhibit an increase in electrical resistance when subjected to an increase in temperature.
0267A variety of thermistors have been manufactured for over the counter use and application. Thermistors are capable of operating over the temperature range of −100 degrees to over 600 degrees Fahrenheit. Because of their flexibility, thermistors are useful for application to micro-fluidics and temperature measurement and control.
0268A change in temperature results in a corresponding change in the electrical resistance of the thermistor. This temperature change results from either an external transfer of heat via conduction or radiation from the sample or surrounding environment to the thermistor, or as an internal application of heat due to electrical power dissipation within the device. When a thermistor is operated in “self-heating” mode, the power dissipated in the device is sufficient to raise its temperature above the temperature of the local environment, which in turn more easily detects thermal changes in the conductivity of the local environment.
0269Thermistors are frequently used in “self heating” mode in applications such as fluid level detection, airflow detection and thermal conductivity materials characterization. This mode is particularly useful in fluid sensing, since a self-heating conductivity sensor dissipates significantly more heat in a fluid or in a moving air stream than it does in still air.
0270Embodiments of the invention may be designed such that the thermal sensor is exposed directly to the sample. However, it may also be embedded in the material of the device, e.g., in the wall of a channel meant to transport the sample. The thermal sensor may be covered with a thin coating of polymer or other protective material.
0271Embodiments of the device need to establish a baseline or threshold value of a monitored parameter such as temperature. Ideally this is established during the setup process. Once fluid movement has been initiated, the device continuously monitors for a significant change thereafter. The change level designated as “significant” is designed as a compromise between noise rejection and adequate sensitivity. The actual definition of the “zero- or start-time” may also include an algorithm determined from the time history of the data, i.e., it can be defined ranging from the exact instant that a simple threshold is crossed, to a complex mathematical function based upon a time sequence of data.
0272In use, a signal is read from a thermal sensor in the absence of the sample or fluid. The fluid sample is then introduced. The sample flows to or past the site of interest in the local environment of the thermal sensor, and the thermal sensor registers the arrival of the sample. The site of interest may include an analysis site for conducting, e.g., an enzymatic assay. Measuring the arrival of fluid at the site of interest thus indicates the zero- or start-time of the reaction to be performed. For detection of fluid presence, these sites may be any of a variety of desired locations along the fluidic pathway. Embodiments of the invention are particularly well suited to a microfluidic cartridge or platform, which provide the user with an assurance that a fluid sample has been introduced and has flowed to the appropriate locations in the platform.
0273A rate-based assay must measure both an initiation time, and some number of later time points, one of which is the end-point of the assay. Therefore, baseline or threshold value can be established, and then continuously monitored for a significant change thereafter; one such change is the arrival of the fluid sample that initiates the enzyme reaction. Baseline values are frequently established during the device setup process. The threshold is designed as a compromise between noise rejection and adequate sensitivity. The defined zero- or “start-time” can be defined ranging from the exact instant that a simple threshold is crossed, to the value algorithmically determined using a filter based on a time sequence of data.
0274Embodiments of the invention accomplish this in a variety of ways. In one embodiment, an initial temperature measurement is made at a thermal sensor without the sample present. The arrival of a sample changes causes the thermal sensor to register a new value. These values are then compared.
0275Another embodiment measures the change in thermal properties (such as thermal conductivity or thermal capacity) in the local environment of a thermal sensor caused by the arrival of a fluid sample. In general this is the operating principle of a class of devices known as “thermal conductivity sensors” or “heat flux sensors”. At least two hardware implementations have been used and are described above. One implementation utilizes a thermal sensor in a “self-heating mode.” In “self-heating mode,” a self-heating thermal sensor may utilize a positive temperature coefficient thermistor placed in or near the flow channel, e.g. located in the wall of the flow channel.
0276An electrical current is run through the thermistor, causing the average temperature of the thermistor to rise above that of the surrounding environment. The temperature can be determined from the electrical resistance, since it is temperature dependent. When fluid flows through the channel, it changes the local thermal conductivity near the thermistor (usually to become higher) and this causes a change in the average temperature of the thermistor. It also changes the thermal capacity, which modifies the thermal dynamic response. These changes give rise to a signal, which can be detected electronically by well-known means, and the arrival of the fluid can thereby be inferred.
0277A second hardware implementation requires a separate heating element in or near the flow channel, plus a thermal sensor arrangement in close proximity. Passing a current through the element provides heat to the local environment and establishes a local temperature detected by the thermocouple device. This temperature or its dynamic response is altered by the arrival of the fluid or blood in or near the local environment, similar to the previously described implementation, and the event is detected electronically.
0278The heating element can be operated in a controlled input mode, which may include controlling one or more of the following parameters—applied current, voltage or power—in a prescribed manner. When operating in controlled input mode, fluctuations of the temperature of the thermal sensor are monitored in order to detect the arrival of the fluid.
0279Alternatively, the heating element can be operated in such a fashion as to control the temperature of the thermal sensor in a prescribed manner. In this mode of operation, the resulting fluctuations in one or more of the input parameters to the heating element (applied current, voltage, and power) can be monitored in order to detect the arrival of the fluid.
0280In either of the above-described operating modes, the prescribed parameter can be held to a constant value or sequence of values that are held constant during specific phases of operation of the device. The prescribed parameter can also varied as a known function or waveform in time.
0281The change in the monitored parameters caused by the arrival of the fluid can be calculated in any of a number of ways, using methods well known in the art of signal processing. The signal processing methods allow the relation of the signal received prior to arrival of the fluid with the signal received upon arrival of the fluid to indicate that the fluid has arrived. For example, and after suitable signal filtering is applied, changes in the monitored value or the rate of change of the value of the signal can be monitored to detect the arrival of the fluid. Additionally, the arrival of fluid will cause a dynamic change in the thermodynamic properties of the local environment, such as thermal conductivity or thermal capacity. When the input parameter is a time varying function this change of thermodynamic properties will cause a phase shift of the measured parameter relative to the controlled parameter. This phase shift can be monitored to detect the arrival of the fluid.
0282It should also be noted that sensitivity to thermal noise and operating power levels could be reduced in these either of these modes of operation by a suitable choice of time-varying waveforms for the prescribed parameter, together with appropriate and well-known signal processing methods applied to the monitored parameters. However, these potential benefits may come at the cost of slower response time.
0283Referring to <figref idref="DRAWINGS">FIG. 63</figref>, an alternative embodiment of a tissue penetration sampling device is shown which incorporates disposable sampling module <b>590</b>, a lancet driver <b>591</b>, and an optional module cartridge <b>592</b> are shown. The optional module cartridge comprises a case body <b>593</b> having a storage cavity <b>594</b> for storing sampling modules <b>590</b>. A cover to this cavity has been left out for clarity. The cartridge further comprises a chamber <b>595</b> for holding the lancet driver <b>591</b>. The lancet driver has a preload adjustment knob <b>596</b>, by which the trigger point of the lancet driver may be adjusted. This insures a reproducible tension on the surface of the skin for better control of the depth of penetration and blood yield. In one embodiment, the sampling module <b>590</b> is removably attached to the lancet driver <b>591</b>, as shown, so that the sampling module <b>590</b> is disposable and the lancet driver <b>591</b> is reusable. In an alternative embodiment, the sampling module and lancet driver are contained within a single combined housing, and the combination sample acquisition module/lancet driver is disposable. The sampling module <b>590</b> includes a sampling site <b>597</b>, preferably having a concave depression <b>598</b>, or cradle, that can be ergonomically designed to conform to the shape of a user's finger or other anatomical feature (not shown).
0284The sampling site further includes an opening <b>599</b> located in the concave depression. The lancet driver <b>591</b> is used to fire a lancet contained within and guided by the sampling module <b>590</b> to create an incision on the user's finger when the finger is placed on the sampling site <b>597</b>. In one embodiment, the sampling site forms a substantially airtight seal at the opening when the skin is firmly pressed against the sampling site; the sampling site may additionally have a soft, compressible material surrounding the opening to further limit contamination of the blood sample by ambient air. “Substantially airtight” in this context means that only a negligible amount of ambient air may leak past the seal under ordinary operating conditions, the substantially airtight seal allowing the blood to be collected seamlessly.
0285Referring to <figref idref="DRAWINGS">FIGS. 64 and 65</figref>, the lancet <b>600</b> is protected in the integrated housing <b>601</b> that provides a cradle <b>602</b> for positioning the user's finger or other body part, a sampling port <b>603</b> within the cradle <b>602</b>, and a sample reservoir <b>603</b>′ for collecting the resulting blood sample. The lancet <b>600</b> is a shaft with a distal end <b>604</b> sharpened to produce the incision with minimal pain. The lancet <b>600</b> further has an enlarged proximal end <b>605</b> opposite the distal end. Similar lancets are commonly known in the art.
0286Rather than being limited to a shaft having a sharp end, the lancet may have a variety of configurations known in the art, with suitable modifications being made to the system to accommodate such other lancet configurations, such configurations having a sharp instrument that exits the sampling port to create a wound from which a blood sample may be obtained.
0287In the figures, the lancet <b>600</b> is slidably disposed within a lancet guide <b>606</b> in the housing <b>601</b>, and movement of the lancet <b>600</b> within the lancet guide <b>606</b> is closely controlled to reduce lateral motion of the lancet, thereby reducing the pain of the lance stick. The sample acquisition module also includes a return stop <b>613</b>, which retains the lancet within the sample acquisition module. The sampling module has an attachment site <b>615</b> for attachment to the lancet driver.
0288The sampling module further includes a depth selector allowing the user to select one of several penetration depth settings. The depth selector is shown as a multi-position thumbwheel <b>607</b> having a graduated surface. By rotating the thumbwheel <b>607</b>, the user selects which part of the graduated surface contacts the enlarged proximal end <b>605</b> of the lancet to limit the movement of the lancet <b>600</b> within the lancet guide <b>606</b>.
0289The thumbwheel is maintained in the selected position by a retainer <b>608</b> having a protruding, rounded surface which engages at least one of several depressions <b>609</b> (e.g. dimples, grooves, or slots) in the thumbwheel <b>607</b>. The depressions <b>609</b> are spatially aligned to correspond with the graduated slope of the thumbwheel <b>607</b>, so that, when the thumbwheel <b>607</b> is turned, the depth setting is selected and maintained by the retainer <b>608</b> engaging the depression <b>609</b> corresponding to the particular depth setting selected.
0290In alternate embodiments, the retainer may be located on the depth selector and the depressions corresponding to the depth setting located on the housing such that retainer may functionally engage the depressions. Other similar arrangements for maintaining components in alignment are known in the art and may be used. In further alternate embodiments, the depth selector may take the form of a wedge having a graduated slope, which contacts the enlarged proximal end of the lancet, with the wedge being retained by a groove in the housing.
0291The sample reservoir <b>603</b>′ includes an elongate, rounded chamber <b>610</b> within the housing <b>601</b> of the sample acquisition module. The chamber <b>610</b> has a flat or slightly spherical shape, with at least one side of the chamber <b>610</b> being formed by a smooth polymer, preferably absent of sharp corners. The sample reservoir <b>603</b>′ also includes a sample input port <b>611</b> to the chamber <b>610</b>, which is in fluid communication with the sampling port <b>603</b>, and a vent <b>612</b> exiting the chamber.
0292A cover (not shown), preferably of clear material such as plastic, positions the lancet <b>600</b> and closes the chamber <b>603</b>′, forming an opposing side of the chamber <b>603</b>′. In embodiments where the cover is clear, the cover may serve as a testing means whereby the sample may be analyzed in the reservoir via optical sensing techniques operating through the cover. A clear cover will also aid in determining by inspection when the sample reservoir is full of the blood sample.
0293<figref idref="DRAWINGS">FIG. 66</figref> shows a portion of the sampling module illustrating an alternate embodiment of the sample reservoir. The sample reservoir has a chamber <b>616</b> having a sample input port <b>617</b> joining the chamber <b>616</b> to a blood transport capillary channel <b>618</b>; the chamber <b>616</b> also has a vent <b>619</b>. The chamber has a first side <b>620</b> that has a flat or slightly spherical shape absent of sharp corners and is formed by a smooth polymer. An elastomeric diaphragm <b>621</b> is attached to the perimeter of the chamber <b>616</b> and preferably is capable of closely fitting to the first side of the chamber <b>620</b>.
0294To control direction of blood flow, the sample reservoir is provided with a first check valve <b>622</b> located at the entrance <b>617</b> of the sample reservoir and a second check valve <b>623</b> leading to an exit channel <b>624</b> located at the vent <b>619</b>. Alternately, a single check valve (at the location <b>622</b>) may be present controlling both flow into the chamber <b>616</b> via the blood transport capillary channel <b>618</b> and flow out of the chamber <b>616</b> into an optional alternate exit channel <b>625</b>. The sample reservoir has a duct <b>626</b> connecting to a source of variable pressure facilitating movement of the diaphragm <b>621</b>.
0295When the diaphragm <b>621</b> is flexed away from the first side of the chamber <b>620</b> (low pressure supplied from the source via duct <b>626</b>), the first check valve <b>622</b> is open and the second check valve <b>623</b> is closed, aspiration of the blood sample into the sample reservoir follows. When the diaphragm <b>621</b> is flexed in the direction of the first side of the chamber <b>620</b> (high pressure supplied from the source via duct <b>626</b>) with the first check valve <b>622</b> closed and the second check valve <b>623</b> open, the blood is forced out of the chamber <b>616</b>. The direction of movement and actuation speed of the diaphragm <b>621</b> can be controlled by the pressure source, and therefore the flow of the sample can be accelerated or decelerated. This feature allows not only reduced damage to the blood cells but also for the control of the speed by which the chamber <b>616</b> is filled.
0296While control of the diaphragm <b>621</b> via pneumatic means is described in this embodiment, mechanical means may alternately be used. Essentially, this micro diaphragm pump fulfills the aspiration, storage, and delivery functions. The diaphragm <b>621</b> may be used essentially as a pump to facilitate transfer of the blood to reach all areas required. Such required areas might be simple sample storage areas further downstream for assaying or for exposing the blood to a chemical sensor or other testing means. Delivery of the blood may be to sites within the sampling module or to sites outside the sampling module, i.e. a separate analysis device.
0297In an alternate embodiment, a chemical sensor or other testing means is located within the sampling module, and the blood is delivered to the chemical sensor or other testing means via a blood transfer channel in fluid communication with the sample reservoir. The components of the sampling module may be injection molded and the diaphragm may be fused or insertion molded as an integral component.
0298<figref idref="DRAWINGS">FIG. 67</figref> depicts a portion of the disposable sampling module surrounding the sampling port <b>627</b>, including a portion of the sampling site cradle surface <b>628</b>. The housing of the sampling module includes a primary sample flow channel <b>629</b> that is a capillary channel connecting the sample input port to the sample reservoir. The primary sample flow channel <b>629</b> includes a primary channel lumenal surface <b>630</b> and a primary channel entrance <b>631</b>, the primary channel entrance <b>631</b> opening into the sample input port <b>627</b>. The sampling module may optionally include a supplemental sample flow channel <b>632</b> that is also a capillary channel having a supplemental channel lumenal surface <b>633</b> and a supplemental channel entrance <b>634</b>, the supplemental channel entrance <b>634</b> opening into the sample input port <b>627</b>.
0299The primary sample flow channel <b>629</b> has a greater cross-sectional area than the supplemental sample flow channel <b>632</b>, preferably by at least a factor of two. Thus, the supplemental sample flow channel <b>632</b> draws fluid faster than the primary sample flow channel <b>629</b>. When the first droplet of blood is received into the sample input port <b>627</b>, the majority of this droplet is drawn through the supplemental sample flow channel <b>632</b>. However, as the blood continues to flow from the incision into the sample input port <b>627</b>, most of this blood is drawn through the primary sample flow channel <b>629</b>, since the supplemental sample flow channel <b>632</b> is of limited capacity and is filled or mostly filled with the first blood droplet. This dual capillary channel configuration is particularly useful in testing where there is a concern with contamination of the sample, e.g. with debris from the lancet strike or (particularly in the case of blood gas testing) with air.
0300In order to improve blood droplet flow, some priming or wicking of the surface with blood is at times necessary to begin the capillary flow process. Portions of the surfaces of the sample input port <b>627</b> and the primary and supplemental (if present) sample flow channels <b>629</b>, <b>632</b> are treated to render those surfaces hydrophilic. The surface modification may be achieved using mechanical, chemical, corona, or plasma treatment. Examples of such coatings and methods are marketed by AST Products (Billerica, Mass.) and Spire Corporation (Bedford, Mass.).
0301However, a complete blanket treatment of the surface could prove detrimental by causing blood to indiscriminately flow all over the surface and not preferentially through the capillary channel(s). This ultimately will result in losses of blood fluid. The particular surfaces which receive the treatment are selected to improve flow of blood from an incised finger on the sampling site cradle surface <b>628</b> through the sample input port <b>627</b> and at least one of the sample flow channels <b>629</b>, <b>632</b> to the sample reservoir. Thus, the treatment process should be masked off and limited only to the selected surfaces. The masking process of selectively modifying the sampling surface from hydrophobic to hydrophilic may be done with mechanical masking techniques such as with metal shielding, deposited dielectric or conductive films, or electrical shielding means.
0302In some embodiments, the treated surfaces are limited to one or more of the following: the surface of the sampling port which lies between the sampling site cradle surface and the primary and supplemental sample flow channel, the surface immediately adjacent to the entrances to the primary and/or supplemental sample flow channels <b>631</b>, <b>634</b> (both within the sample input port and within the sample flow channel), and the lumenal surface of the primary and/or supplemental sample flow channels <b>630</b>, <b>633</b>.
0303Upon exiting the incision blood preferentially moves through the sample input port <b>627</b> into the supplementary sample flow channel <b>632</b> (if present) and into the primary sample flow channel <b>629</b> to the sample reservoir, resulting in efficient capture of the blood. Alternatively, the substrate material may be selected to be hydrophilic or hydrophobic, and a portion of the surface of the substrate material may be treated for the opposite characteristic.
0304In an embodiment, <figref idref="DRAWINGS">FIG. 67</figref> a membrane <b>635</b> at the base of the sample input port <b>627</b> is positioned between the retracted sharpened distal end of the lancet <b>636</b> and the entrance to the sample flow channels <b>631</b>, <b>634</b>. The membrane <b>635</b> facilitates the blood sample flow through the sample flow channels <b>629</b>, <b>632</b> by restricting the blood from flowing into the area <b>636</b> surrounding the distal end of the lancet <b>637</b>. The blood thus flows preferentially into the sample reservoir. In an embodiment, the membrane <b>635</b> is treated to have a hydrophobic characteristic. In another embodiment, the membrane <b>635</b> is made of polymer-based film <b>638</b> that has been coated with a silicone-based gel <b>639</b>.
0305For example, the membrane structure may comprise a polymer-based film <b>638</b> composed of polyethylene terephthalate, such as the film sold under the trademark MYLAR. The membrane structure may further comprise a thin coating of a silicone-based gel <b>639</b> such as the gel sold under the trademark SYLGARD on at least one surface of the film. The usefulness of such a film is its ability to reseal after the lancet has penetrated it without physically affecting the lancet's cutting tip and edges. The MYLAR film provides structural stability while the thin SYLGARD silicone laminate is flexible enough to retain its form and close over the hole made in the MYLAR film. Other similar materials fulfilling the structural stability and flexibility roles may be used in the manufacture of the membrane in this embodiment.
0306The membrane <b>635</b> operates to allow the sharpened distal end of the lancet <b>637</b> to pierce the membrane as the sharpened distal end of the lancet <b>637</b> travels into and through the sample input port <b>627</b>. In an embodiment, the silicone-based gel <b>639</b> of the membrane <b>635</b> automatically seals the cut caused by the piercing lancet. Therefore, after an incision is made on a finger of a user, the blood from the incision is prevented from flowing through the membrane <b>635</b>, which aids the blood to travel through the primary sample flow channel <b>629</b> to accumulate within the sample reservoir. Thus the film prevents any blood from flowing into the lancet device assembly, and blood contamination and loss into the lancet device mechanism cavity are prevented. Even without the resealing layer <b>639</b>, the hydrophobic membrane <b>635</b> deters the flow of blood across the membrane <b>635</b>, resulting in improved flow through the primary sample flow channel <b>629</b> and reduced or eliminated flow through the pierced membrane <b>635</b>.
0307<figref idref="DRAWINGS">FIGS. 68-70</figref> illustrate one implementation of a lancet driver <b>640</b> at three different points during the use of the lancet driver. In this description of the lancet driver, proximal indicates a position relatively close to the site of attachment of the sampling module; conversely, distal indicates a position relatively far from the site of attachment of the sampling module. The lancet driver has a driver handle body <b>641</b> defining a cylindrical well <b>642</b> within which is a preload spring <b>643</b>. Proximal to the preload spring <b>643</b> is a driver sleeve <b>644</b>, which closely fits within and is slidably disposed within the well <b>642</b>. The driver sleeve <b>644</b> defines a cylindrical driver chamber <b>645</b> within which is an actuator spring <b>646</b>. Proximal to the actuator spring <b>646</b> is a plunger sleeve <b>647</b>, which closely fits within and is slidably disposed within the driver sleeve <b>644</b>.
0308The driver handle body <b>641</b> has a distal end <b>648</b> defining a threaded passage <b>649</b> into which a preload screw <b>650</b> fits. The preload screw defines a counterbore <b>651</b>. The preload screw <b>650</b> has a distal end <b>652</b> attached to a preload adjustment knob <b>653</b> and a proximal end <b>654</b> defining an aperture <b>655</b>. The driver sleeve <b>644</b> has a distal end <b>656</b> attached to a catch fitting <b>657</b>. The catch fitting <b>657</b> defines a catch hole <b>658</b>. The driver sleeve <b>644</b> has a proximal end <b>659</b> with a sloped ring feature <b>660</b> circling the interior surface of the driver sleeve's proximal end <b>659</b>.
0309The lancet driver includes a plunger stem <b>660</b> having a proximal end <b>661</b> and a distal end <b>662</b>. At its distal end <b>662</b>, an enlarged plunger head <b>663</b> terminates the plunger stem <b>660</b>. At its proximal end <b>661</b>, the plunger stem <b>660</b> is fixed to the plunger tip <b>667</b> by adhesively bonding, welding, crimping, or threading into a hole <b>665</b> in the plunger tip <b>667</b>. A plunger hook <b>665</b> is located on the plunger stem <b>660</b> between the plunger head <b>663</b> and the plunger tip <b>667</b>. The plunger head <b>663</b> is slidably disposed within the counterbore <b>651</b> defined by the preload screw <b>650</b>. The plunger stem <b>660</b> extends from the plunger head <b>663</b>, through the aperture <b>655</b> defined by the proximal end <b>654</b> of the preload screw, thence through the hole <b>658</b> in the catch fitting <b>657</b>, to the joint <b>664</b> in the plunger tip <b>667</b>. For assembly purposes, the plunger base joint <b>664</b> may be incorporated into the plunger sleeve <b>647</b>, and the plunger stem <b>660</b> attached to the plunger base <b>664</b> by crimping, swaging, gluing, welding, or some other means. Note that the lancet driver <b>640</b> could be replaced with any of the controlled electromagnetic drivers discussed above.
0310The operation of the tissue penetration sampling device may be described as follows, with reference to <figref idref="DRAWINGS">FIGS. 63-70</figref>. In operation, a fresh sampling module <b>590</b> is removed from the storage cavity <b>594</b> and adjusted for the desired depth setting using the multi-position thumbwheel <b>607</b>. The sampling module <b>590</b> is then placed onto the end of the lancet driver <b>591</b>. The preload setting may be checked, but will not change from cycle to cycle once the preferred setting is found; if necessary, the preload setting may be adjusted using the preload adjustment knob <b>596</b>.
0311The combined sampling module and lancet driver assembly is then pressed against the user's finger (or other selected anatomical feature) in a smooth motion until the preset trigger point is reached. The trigger point corresponds to the amount of preload force that needs to be overcome to actuate the driver to drive the lancet towards the skin. The preload screw allows the preload setting to be adjusted by the user such that a consistent, preset (by the user) amount of preload force is applied to the sampling site <b>597</b> each time a lancing is performed.
0312When the motion to press the assembly against the user's finger is begun (see <figref idref="DRAWINGS">FIG. 68</figref>), the plunger hook <b>665</b> engages catch fitting <b>657</b>, holding the actuator spring <b>646</b> in a cocked position while the force against the finger builds as the driver sleeve <b>644</b> continues to compress the preload spring <b>643</b>. Eventually (see <figref idref="DRAWINGS">FIG. 69</figref>) the sloped back of the plunger hook <b>665</b> slides into the hole <b>655</b> in the proximal end of the preload screw <b>654</b> and disengages from the catch fitting <b>657</b>. The plunger sleeve <b>647</b> is free to move in a proximal direction once the plunger hook <b>665</b> releases, and the plunger sleeve <b>647</b> is accelerated by the actuator spring <b>646</b> until the plunger tip <b>667</b> strikes the enlarged proximal end of the lancet <b>212</b>.
0313Upon striking the enlarged proximal end of the lancet <b>605</b>, the plunger tip <b>667</b> of the actuated lancet driver reversibly engages the enlarged proximal end of the lancet <b>605</b>. This may be accomplished by mechanical means, e.g. a fitting attached to the plunger tip <b>667</b> that detachably engages a complementary fitting on the enlarged proximal end of the lancet <b>605</b>, or the enlarged proximal end of the lancet <b>605</b> may be coated with an adhesive that adheres to the plunger tip <b>667</b> of the actuated lancet driver. Upon being engaged by the plunger tip <b>667</b>, the lancet <b>600</b> slides within the lancet guide <b>606</b> with the sharpened distal end of the lancet <b>604</b> emerging from the housing <b>601</b> through the sampling port <b>603</b> to create the incision in the user's finger.
0314At approximately the point where the plunger tip <b>667</b> contacts the enlarged proximal end of the lancet <b>605</b>, the actuator spring <b>646</b> is at its relaxed position, and the plunger tip <b>667</b> is traveling at its maximum velocity. During the extension stroke, the actuator spring <b>646</b> is being extended and is slowing the plunger tip <b>667</b> and lancet <b>600</b>. The end of stroke occurs (see <figref idref="DRAWINGS">FIG. 70</figref>) when the enlarged proximal end of the lancet <b>605</b> strikes the multi-position thumbwheel <b>607</b>.
0315The direction of movement of the lancet <b>600</b> is then reversed and the extended actuator spring then quickly retracts the sharpened distal end of the lancet <b>604</b> back through the sampling port <b>603</b>. At the end of the return stroke, the lancet <b>600</b> is stripped from the plunger tip <b>667</b> by the return stop <b>613</b>. The adhesive adheres to the return stop <b>613</b> retaining the lancet in a safe position.
0316As blood seeps from the wound, it fills the sample input port <b>603</b> and is drawn by capillary action into the sample reservoir <b>603</b>′. In this embodiment, there is no reduced pressure or vacuum at the wound, i.e. the wound is at ambient air pressure, although embodiments which draw the blood sample by suction, e.g. supplied by a syringe or pump, may be used. The vent <b>612</b> allows the capillary action to proceed until the entire chamber is filled, and provides a transfer port for analysis of the blood by other instrumentation. The finger is held against the sample acquisition module until a complete sample is observed in the sample reservoir.
0317As the sampling module <b>600</b> is removed from the lancet driver <b>591</b>, a latch <b>614</b> that is part of the return stop <b>613</b> structure engages a sloped ring feature <b>660</b> inside the lancet driver <b>591</b>. As the lancet driver <b>591</b> is removed from the sampling module <b>600</b>, the latch forces the return stop <b>613</b> to rotate toward the lancet <b>600</b>, bending it to lock it in a safe position, and preventing reuse.
0318As the sampling module <b>600</b> is removed from the lancet driver <b>591</b>, the driver sleeve <b>644</b> is forced to slide in the driver handle body <b>641</b> by energy stored in the preload spring <b>643</b>. The driver sleeve <b>644</b>, plunger sleeve <b>647</b>, and actuator spring <b>646</b> move outward together until the plunger head <b>663</b> on the plunger stem <b>660</b> contacts the bottom of the counterbore <b>651</b> at the proximal end of the preload screw <b>654</b>. The preload spring <b>643</b> continues to move the driver sleeve <b>644</b> outward compressing the actuator spring <b>646</b> until the plunger hook <b>665</b> passes through the hole <b>658</b> in the catch fitting <b>657</b>. Eventually the two springs reach equilibrium and the plunger sleeve <b>647</b> comes to rest in a cocked position.
0319After the sampling module <b>600</b> is removed from the lancet driver <b>591</b>, it may be placed in a separate analysis device to obtain blood chemistry readings. In a preferred embodiment, the integrated housing <b>601</b> or sample reservoir <b>603</b>′ of the sampling module <b>600</b> contains at least one biosensor, which is powered by and/or read by the separate analysis device. In another embodiment, the analysis device performs an optical analysis of the blood sample directly through the clear plastic cover of the sampling module. Alternatively, the blood sample may be transferred from the sampling module into an analysis device for distribution to various analysis processes.
0320Alternate embodiments of the invention offer improved success rates for sampling, which reduces the needless sacrifice of a sample storage reservoir or an analysis module due to inadequate volume fill. Alternate embodiments allow automatic verification that sufficient blood has been collected before signaling the user (e.g. by a signal light or an audible beep) that it is okay to remove the skin from the sampling site. In such alternate embodiments, one or more additional lancet(s) (denoted backup lancets) and/or lancet driver(s) (denoted backup lancet drivers) and/or sample reservoir(s) (denoted backup sample reservoirs) are present with the “primary” sampling module.
0321In one such preferred embodiment, following detection of inadequate blood sample volume (e.g., by light or electronic methods), a backup sampling cycle is initiated automatically. The “backup sampling cycle” includes disconnecting the primary sample reservoir via a simple valving system, bringing the backup components online, lancing of the skin, collection of the blood, and movement of the blood to the backup sample reservoir.
0322Blood flows into the backup sample reservoir until the required volume is obtained. The cycle repeats itself, if necessary, until the correct volume is obtained. Only then is the sample reservoir made available as a source of sampled blood for use in measurements or for other applications. The series of reservoirs and/or lancets and/or lancet drivers may easily be manufactured in the same housing and be transparent to the user.
0323In one embodiment, up to three sample reservoirs (the primary plus two backup) are present in a single sample acquisition module, each connected via a capillary channel/valving system to one or more sampling ports. Another embodiment has four sample reservoirs (the primary plus three backup) present in a single sample acquisition module, each connected via a capillary channel/valving system to one or more sampling ports. With three or four sample reservoirs, at least an 80% sampling success rate can be achieved for some embodiments.
0324Another embodiment includes a miniaturized version of the tissue penetration sampling device. Several of the miniature lancets may be located in a single sampling site, with corresponding sample flow channels to transfer blood to one or more reservoirs. The sample flow channels may optionally have valves for controlling flow of blood. The device may also include one or more sensors, such as the thermal sensors discussed above, for detecting the presence of blood, e.g. to determine if a sufficient quantity of blood has been obtained. In such an embodiment, the disposable sampling module, the lancet driver, and the optional module cartridge will have dimensions no larger than about 150 mm long, 60 mm wide, and 25 mm thick.
0325In other embodiments, the size of the tissue penetration sampling device including the disposable sampling module, the lancet driver, and the optional cartridge will have dimensions no larger than about 100 mm long, about 50 mm wide, and about 20 mm thick, and in still other embodiments no larger than about 70 mm long, about 30 mm wide, and about 10 mm thick. The size of the tissue penetration sampling device including the disposable sampling module, the lancet driver, and the optional cartridge will generally be at least about 10 mm long, about 5 mm wide, and about 2 mm thick.
0326In another miniature embodiment, the dimensions of the lancet driver without the cartridge or sampling module are no larger than about 80 mm long, 10 mm wide, and 10 mm thick, or specifically no larger than about 50 mm long, 7 mm wide, and 7 mm thick, or even more specifically no larger than about 15 mm long, 5 mm wide, and 3 mm thick; dimensions of the lancet driver without the cartridge or sampling module are generally at least about 1 mm long, 0.1 mm wide, and 0.1 mm thick, or specifically at least about 2 mm long, 0.2 mm wide, and 0.2 mm thick, or more specifically at least about 4 mm long, 0.4 mm wide, and 0.4 mm thick.
0327In yet another miniature embodiment, dimensions of the miniature sampling module without the lancet driver or cartridge are no larger than about 15 mm long, about 10 mm wide, and about 10 mm thick, or no larger than about 10 mm long, about 7 mm wide, and about 7 mm thick, or no larger than about 5 mm long, about 3 mm wide, and about 2 mm thick; dimensions of the miniature sampling module without the lancet driver or cartridge are generally at least about 1 mm long, 0.1 mm wide, and 0.1 mm thick, specifically at least about 2 mm long, 0.2 mm wide, and 0.2 mm thick, or more specifically at least about 4 mm long, 0.4 mm wide, and 0.4 mm thick.
0328In another embodiment, the miniaturized sampling module and the lancet driver form a single unit having a shared housing, and the combined sample acquisition module/lancet driver unit is disposable. Such a combined unit is no larger than about 80 mm long, about 30 mm wide, and about 10 mm thick, specifically no larger than about 50 mm long, about 20 mm wide, and about 5 mm thick, more specifically, no larger than about 20 mm long, about 5 mm wide, and about 3 mm thick; the combined unit is generally at least about 2 mm long, about 0.3 mm wide, and about 0.2 mm thick, specifically at least about 4 mm long, 0.6 mm wide, and 0.4 mm thick, more specifically, at least about 8 mm long, 1 mm wide, and 0.8 mm thick.
0329Referring to <figref idref="DRAWINGS">FIG. 71</figref>, another embodiment of a tissue penetration sampling device is shown, incorporating a disposable sampling module <b>608</b> cartridge and analyzer device <b>669</b> is shown. The analyzer device <b>669</b> includes a deck <b>670</b> having a lid <b>671</b> attached to the deck by hinges along the rear edge of the system <b>672</b>. A readout display <b>673</b> on the lid <b>671</b> functions to give the user information about the status of the analyzer device <b>669</b> and/or the sampling module cartridge <b>668</b>, or to give readout of a blood test. The analyzer device <b>669</b> has several function buttons <b>674</b> for controlling function of the analyzer device <b>669</b> or for inputting information into the reader device <b>669</b>. Alternatively, the reader device may have a touch-sensitive screen, an optical scanner, or other input means known in the art.
0330An analyzer device with an optical scanner may be particularly useful in a clinical setting, where patient information may be recorded using scan codes on patients' wristbands or files. The analyzer reader device may have a memory, enabling the analyzer device to store results of many recent tests. The analyzer device may also have a clock and calendar function, enabling the results of tests stored in the memory to be time and date-stamped. A computer interface <b>675</b> enables records in memory to be exported to a computer. The analyzer device <b>669</b> has a chamber located between the deck <b>670</b> and the lid <b>671</b>, which closely accommodates a sampling module cartridge <b>668</b>. Raising the lid <b>671</b>, allowing a sampling module cartridge <b>668</b> to be inserted or removed, accesses the chamber.
0331<figref idref="DRAWINGS">FIG. 72</figref> is an illustration showing some of the features of an embodiment of a sampling module cartridge. The sampling module cartridge <b>668</b> has a housing having an orientation sensitive contact interface for mating with a complementary surface on the analyzer device. The contact interface functions to align the sampling module cartridge with the analyzer device, and also allows the analyzer device to rotate the sampling module cartridge in preparation for a new sampling event. The contact interface may take the form of cogs or grooves formed in the housing, which mate with complementary cogs, or grooves in the chamber of the analyzer device.
0332The sampling module cartridge has a plurality of sampling sites <b>678</b> on the housing, which are shown as slightly concave depressions near the perimeter of the sampling module cartridge <b>668</b>. Each sampling site defines an opening <b>679</b> contiguous with a sample input port entering the sampling module. In an alternate embodiment, the sampling sites and sample input ports are located on the edge of the sampling module cartridge. Optical windows <b>680</b> allow transmission of light into the sampling module cartridge for the purpose of optically reading test results. Alternatively, sensor connection points allow transmission of test results to the analyzer device via electrical contact. Access ports <b>681</b>, if present, allow transmission of force or pressure into the sampling module cartridge from the analyzer device. The access ports may be useful in conjunction with running a calibration test or combining reagents with sampled blood or other bodily fluids.
0333The described features are arranged around the sampling module cartridge, and the sampling module cartridge is radially partitioned into many sampling modules, each sampling module having the components necessary to perform a single blood sampling and testing event. A plurality of sampling modules are present on a sampling module cartridge, generally at least ten sampling modules are present on a single disposable sampling module cartridge; at least about 20, or more on some embodiments, and at least about 34 sampling modules are present on one embodiment, allowing the sampling module cartridge to be maintained in the analyzer device for about a week before replacing with a new sampling module cartridge (assuming five sampling and testing events per day for seven days). With increasing miniaturization, up to about 100, or more preferably up to about 150, sampling modules may be included on a single sampling module cartridge, allowing up to a month between replacements with new sampling module cartridges. It may be necessary for sampling sites to be located in several concentric rings around the sampling module cartridge or otherwise packed onto the housing surface to allow the higher number of sampling modules on a single sampling module cartridge.
0334In other embodiments, the sampling module cartridge may be any other shape which may conveniently be inserted into a analyzer device and which are designed to contain multiple sampling modules, e.g. a square, rectangular, oval, or polygonal shape. Each sampling module is miniaturized, being generally less than about 6.0 cm long by about 1.0 cm wide by about 1.0 cm thick, so that thirty five more or less wedge-shaped sampling modules can fit around a disk having a radius of about 6.0 cm. In some embodiments, the sampling modules can be much smaller, e.g. less than about 3.0 cm long by about 0.5 cm wide by about 0.5 cm thick.
0335<figref idref="DRAWINGS">FIG. 73</figref> depicts, in a highly schematic way, a single sampling module, positioned within the analyzer device. Of course, it will occur to the person of ordinary skill in the art that the various recited components may be physically arranged in various configurations to yield a functional system. <figref idref="DRAWINGS">FIG. 73</figref> depicts some components, which might only be present in alternate embodiments and are not necessarily all present in any single embodiment. The sampling module has a sample input port <b>682</b>, which is contiguous with an opening <b>683</b> defined by a sampling site <b>684</b> on the cartridge housing <b>685</b>. A lancet <b>686</b> having a lancet tip <b>687</b> adjacent to the sample input port <b>682</b> is operably maintained within the housing such that the lancet <b>686</b> can move to extend the lancet tip <b>687</b> through the sample input port <b>682</b> to outside of the sampling module cartridge.
0336The lancet <b>686</b> also has a lancet head <b>688</b> opposite the lancet tip. The lancet <b>686</b> driven to move by a lancet driver <b>689</b>, which is schematically depicted as a coil around the lancet <b>686</b>. The lancet driver <b>689</b> optionally is included in the sampling module cartridge as pictured or alternatively is external to the sampling module cartridge. The sampling module may further include a driver port <b>690</b> defined by the housing adjacent to the lancet head <b>688</b>—the driver port <b>690</b> allows an external lancet driver <b>691</b> access to the lancet <b>686</b>.
0337In embodiments where the lancet driver <b>689</b> is in the sampling module cartridge, it may be necessary to have a driver connection point <b>694</b> upon the housing accessible to the analyzer device. The driver connection point <b>694</b> may be a means of triggering the lancet driver <b>689</b> or of supplying motive force to the lancet driver <b>689</b>, e.g. an electrical current to an electromechanical lancet driver. Note that any of the drivers discussed above, including controllable drivers, electromechanical drivers, etc., can be substituted for the lancet driver <b>689</b> shown.
0338In one embodiment a pierceable membrane <b>692</b> is present between the lancet tip <b>687</b> and the sample input port <b>682</b>, sealing the lancet <b>686</b> from any outside contact prior to use. A second membrane <b>693</b> may be present adjacent to the lancet head <b>688</b> sealing the driver port <b>690</b>. The pierceable membrane <b>692</b> and the second membrane <b>693</b> function to isolate the lancet <b>686</b> within the lancet chamber to maintain sterility of the lancet <b>686</b> prior to use. During use the lancet tip <b>687</b> and the external lancet driver <b>691</b> pierce the pierceable membrane <b>692</b> and the second membrane <b>693</b>, if present respectively.
0339A sample flow channel <b>695</b> leads from the sample input port <b>682</b> to an analytical region <b>696</b>. The analytical region <b>696</b> is associated with a sample sensor capable of being read by the analyzer device. If the sample sensor is optical in nature, the sample sensor may include optically transparent windows <b>697</b> in the housing above and below the analytical region <b>696</b>, allowing a light source in the analyzer device to pass light <b>698</b> through the analytical region. An optical sensor <b>698</b>′, e.g. a CMOS array, is present in the analyzer device for sensing the light <b>699</b> that has passed through the analytical region <b>696</b> and generating a signal to be analyzed by the analyzer device.
0340In a separate embodiment, only one optically transparent window is present, and the opposing side of the analytical region is silvered or otherwise reflectively coated to reflect light back through the analytical region and out the window to be analyzed by the analyzer device. In an alternate embodiment, the sensor is electrochemical <b>700</b>, e.g. an enzyme electrode, and includes a means of transmitting an electric current from the sampling module cartridge to the analyzer device, e.g. an electrical contact <b>701</b>, or plurality of electrical contacts <b>701</b>, on the housing accessible to the analyzer device.
0341In one embodiment, the pierceable membrane <b>692</b> may be made of polymer-based film that has been coated with a silicone-based gel. For example, the membrane structure may comprise a polymer-based film composed of polyethylene terephthalate, such as the film sold under the trademark MYLAR®. The membrane structure may further comprise a thin coating of a silicone-based gel such as the gel sold under the trademark SYLGARD® on at least one surface of the film.
0342The usefulness of such a film is its ability to reseal after the lancet tip has penetrated it without physically affecting the lancet's cutting tip and edges. The MYLAR® film provides structural stability while the thin SYLGARD® silicone laminate is flexible enough to retain its form and close over the hole made in the MYLAR® film. Other similar materials fulfilling the structural stability and flexibility roles may be used in the manufacture of the pierceable membrane in this embodiment.
0343The pierceable membrane <b>692</b> operates to allow the lancet tip <b>687</b> to pierce the pierceable membrane <b>692</b> as the lancet tip <b>687</b> travels into and through the sampling port <b>682</b>. In the described embodiment, the silicone-based gel of the membrane <b>692</b> automatically seals the cut caused by the lancet tip <b>687</b>. Therefore, after an incision is made on a finger of a user and the lancet tip <b>687</b> is retracted back through the pierceable membrane <b>692</b>, the blood from the incision is prevented from flowing through the pierceable membrane <b>692</b>, which aids the blood to travel through the sample flow channel <b>695</b> to accumulate within the analytical region <b>696</b>.
0344Thus the pierceable membrane <b>692</b> prevents blood from flowing into the lancet device assembly, and blood contamination and loss into the lancet device mechanism cavity are prevented. In yet another embodiment, used sample input ports are automatically sealed off before going to the next sample acquisition cycle by a simple button mechanism. A similar mechanism seals off a sample input port should sampling be unsuccessful.
0345In an alternate embodiment, a calibrant supply reservoir <b>702</b> is also present in each sampling module. The calibrant supply reservoir <b>702</b> is filled with a calibrant solution and is in fluid communication with a calibration chamber <b>703</b>. The calibration chamber <b>703</b> provides a source of a known signal from the sampling module cartridge to be used to validate and quantify the test conducted in the analytical region <b>696</b>. As such, the configuration of the calibration chamber <b>703</b> closely resembles the analytical region <b>696</b>.
0346During use, the calibrant solution is forced from the calibrant supply reservoir <b>702</b> into the calibration chamber <b>703</b>. The figure depicts a stylized plunger <b>704</b> above the calibrant supply reservoir <b>702</b> ready to squeeze the calibrant supply reservoir <b>702</b>. In practice, a variety of methods of transporting small quantities of fluid are known in the art and can be implemented on the sampling module cartridge. The calibration chamber <b>703</b> is associated with a calibrant testing means.
0347<figref idref="DRAWINGS">FIG. 73</figref> shows two alternate calibrant testing means—optical windows <b>697</b> and an electrochemical sensor <b>676</b>. In cases where the sampling module is designed to perform several different tests on the blood, both optical and electrochemical testing means may be present. The optical windows <b>697</b> allow passage of light <b>677</b> from the analyzer device through the calibration chamber <b>703</b>, whereupon the light <b>703</b>′ leaving the calibration chamber <b>703</b> passes onto an optical sensor <b>698</b>′ to result in a signal in the analyzer device.
0348The electrochemical sensor <b>676</b> is capable of generating a signal that is communicated to the analyzer device via, e.g. an electrical contact <b>704</b>′, which is accessible to a contact probe <b>702</b>′ on the analyzer device that can be extended to contact the electrical contact <b>704</b>′. The calibrant solution may be any solution, which, in combination with the calibrant testing means, will provide a suitable signal, which will serve as calibration measurement to the analyzer device. Suitable calibrant solutions are known in the art, e.g. glucose solutions of known concentration. The calibration measurement is used to adjust the results obtained from sample sensor from the analytical region <b>696</b>.
0349To maintain small size in some sampling module cartridge embodiments, allowing small quantities of sampled blood to be sufficient, each component of the sampling module must be small, particularly the sample flow channel and the analytical region. The sample flow channel can be less than about 0.5 mm in diameter, specifically less than about 0.3 mm in diameter, more specifically less than about 0.2 mm in diameter, and even more specifically less than about 0.1 mm in diameter.
0350The sample flow channel may generally be at least about 50 micrometers in diameter. The dimensions of the analytical region may be less than about 1 mm by about 1 mm by about 1 mm, specifically less than about 0.6 mm by about 0.6 mm by about 0.4 mm, more specifically less than about 0.4 mm by 0.4 mm by 0.2 mm, and even more specifically less than about 0.2 mm by about 0.2 mm by about 0.1 mm. The analytical region can generally be at least about 100 micrometers by 100 micrometers by 50 micrometers.
0351The sampling module cartridge is able to return a valid testing result with less than about 5 microliters of blood taken from the skin of a patient, specifically less than about 1 microliter, more specifically less than about 0.4 microliters, and even more specifically less than about 0.2 microliters. Generally, at least 0.05 microliters of blood is drawn for a sample.
0352The cartridge housing may be made in a plurality of distinct pieces, which are then assembled to provide the completed housing. The distinct pieces may be manufactured from a wide range of substrate materials. Suitable materials for forming the described apparatus include, but are not limited to, polymeric materials, ceramics (including aluminum oxide and the like), glass, metals, composites, and laminates thereof. Polymeric materials are particularly preferred herein and will typically be organic polymers that are homopolymers or copolymers, naturally occurring or synthetic, crosslinked or uncrosslinked.
0353It is contemplated that the various components and devices described herein, such as sampling module cartridges, sampling modules, housings, etc., may be made from a variety of materials, including materials such as the following: polycarbonates; polyesters, including poly (ethylene terephthalate) and poly(butylene terephthalate); polyamides, (such as nylons); polyethers, including polyformaidehyde and poly (phenylene sulfide); polyimides, such as that manufactured under the trademarks KAPTON (DuPont, Wilmington, Del.) and UPILEX (Ube Industries, Ltd., Japan); polyolefin compounds, including ABS polymers, Kel-F copolymers, poly(methyl methacrylate), poly(styrene-butadiene) copolymers, poly(tetrafluoroethylene), poly(ethylenevinyl acetate) copolymers, poly(N-vinylcarbazole) and polystyrene.
0354The various components and devices described herein may also be fabricated from a “composite,” i.e., a composition comprised of unlike materials. The composite may be a block composite, e.g., an A_B_A block composite, an A_B_C block composite, or the like. Alternatively, the composite may be a heterogeneous combination of materials, i.e., in which the materials are distinct from separate phases, or a homogeneous combination of unlike materials. A laminate composite with several different bonded layers of identical or different materials can also be used.
0355Other preferred composite substrates include polymer laminates, polymer-metal laminates, e.g., polymer coated with copper, a ceramic-in-metal or a polymer-in-metal composite. One composite material is a polyimide laminate formed from a first layer of polyimide such as KAPTON polyimide, available from DuPont (Wilmington, Del.), that has been co-extruded with a second, thin layer of a thermal adhesive form of polyimide known as KJ®, also available from DuPont (Wilmington, Del.).
0356Any suitable fabrication method for the various components and devices described herein can be used, including, but not limited to, molding and casting techniques, embossing methods, surface machining techniques, bulk machining techniques, and stamping methods. Further, injection-molding techniques well known in the art may be useful in shaping the materials used to produce sample modules and other components.
0357For some embodiments, the first time a new sampling module cartridge <b>668</b> is used, the user removes any outer packaging material from the sampling module cartridge <b>668</b> and opens the lid <b>671</b> of the analyzer device <b>669</b>, exposing the chamber. The sampling module cartridge <b>668</b> is slipped into the chamber and the lid <b>671</b> closed. The patient's skin is positioned upon the sampling site <b>678</b> and the integrated process of lancing the skin, collecting the blood sample, and testing the blood sample is initiated, e.g. by pressing a function button <b>674</b> to cause the lancet driver to be triggered. The patient's skin is maintained in position upon the sampling site <b>678</b>, adjacent the sample input port <b>682</b>, until an adequate volume of blood has been collected, whereupon the system may emit a signal (e.g. an audible beep) that the patient's skin may be lifted from the sampling site <b>678</b>.
0358When the testing of the sample is complete, the analyzer device <b>669</b> automatically reads the results from the sampling module cartridge <b>668</b> and reports the results on the readout display <b>673</b>. The analyzer device <b>669</b> may also store the result in memory for later downloading to a computer system. The sampling module cartridge <b>668</b> may then automatically be advanced to bring the next sampling module inline for the next use. Each successive time the system is used (optionally until the sampling module cartridge <b>668</b> is used up), the patient's skin may be placed upon the sampling site <b>678</b> of the (already installed) sampling module cartridge <b>668</b>, thus simplifying the process of blood sampling and testing.
0359A method of providing more convenient blood sampling, wherein a series of blood samples may be collected and tested using a single disposable sampling module cartridge which is designed to couple to an analyzer device is described. Embodiments of the sampling module cartridge include a plurality of sampling modules. Each sampling module can be adapted to perform a single blood sampling cycle and is functionally arranged within the sampling module cartridge to allow a new sampling module to be brought online after a blood sampling cycle is completed.
0360Each blood sampling cycle may include lancing of a patient's skin, collection of a blood sample, and testing of the blood sample. The blood sampling cycle may also include reading of information about the blood sample by the analyzer device, display and/or storage of test results by the analyzer device, and/or automatically advancing the sampling module cartridge to bring a new sampling module online and ready for the next blood sampling cycle to begin.
0361A method embodiment starts with coupling of the sampling module cartridge and analyzer device and then initiating a blood sampling cycle. Upon completion of the blood sampling cycle, the sampling module cartridge is advanced to bring a fresh, unused sampling module online, ready to perform another blood sampling cycle. Generally, at least ten sampling modules are present, allowing the sampling module cartridge to be advanced nine times after the initial blood sampling cycle.
0362In some embodiments, more sampling modules are present and the sampling module cartridge may be advanced about 19 times, and about 34 times in some embodiments, allowing about 19 or about 34 blood sampling cycles, respectively, after the initial blood sampling cycle. After a series of blood sampling cycles has been performed and substantially all (i.e. more than about 80%) of the sampling modules have been used, the sampling module cartridge is decoupled from the analyzer device and discarded, leaving the analyzer device ready to be coupled with a new sampling module cartridge.
0363Referring to <figref idref="DRAWINGS">FIGS. 74-76</figref>, a tissue penetration sampling device <b>180</b> is shown with the controllable driver <b>179</b> of <figref idref="DRAWINGS">FIG. 20</figref> coupled to a sampling module cartridge <b>705</b> and disposed within a driver housing <b>706</b>. A ratchet drive mechanism <b>707</b> is secured to the driver housing <b>706</b>, coupled to the sampling module cartridge <b>705</b> and configured to advance a sampling module belt <b>708</b> within the sampling module cartridge <b>705</b> so as to allow sequential use of each sampling module <b>709</b> in the sampling module belt <b>708</b>. The ratchet drive mechanism <b>707</b> has a drive wheel <b>711</b> configured to engage the sampling modules <b>709</b> of the sampling module belt <b>708</b>. The drive wheel <b>711</b> is coupled to an actuation lever <b>712</b> that advances the drive wheel <b>711</b> in increments of the width of a single sampling module <b>709</b>. A T-slot drive coupler <b>713</b> is secured to the elongated coupler shaft <b>184</b>.
0364A sampling module <b>709</b> is loaded and ready for use with the drive head <b>198</b> of the lancet <b>183</b> of the sampling module <b>709</b> loaded in the T-slot <b>714</b> of the drive coupler <b>713</b>. A sampling site <b>715</b> is disposed at the distal end <b>716</b> of the sampling module <b>709</b> disposed about a lancet exit port <b>717</b>. The distal end <b>716</b> of the sampling module <b>709</b> is exposed in a module window <b>718</b>, which is an opening in a cartridge cover <b>721</b> of the sampling module cartridge <b>705</b>. This allows the distal end <b>716</b> of the sampling module <b>709</b> loaded for use to be exposed to avoid contamination of the cartridge cover <b>721</b> with blood from the lancing process.
0365A reader module <b>722</b> is disposed over a distal portion of the sampling module <b>709</b> that is loaded in the drive coupler <b>713</b> for use and has two contact brushes <b>724</b> that are configured to align and make electrical contact with sensor contacts <b>725</b> of the sampling module <b>709</b> as shown in <figref idref="DRAWINGS">FIG. 77</figref>. With electrical contact between the sensor contacts <b>725</b> and contact brushes <b>724</b>, the processor <b>193</b> of the controllable driver <b>179</b> can read a signal from an analytical region <b>726</b> of the sampling module <b>709</b> after a lancing cycle is complete and a blood sample enters the analytical region <b>726</b> of the sampling module <b>709</b>. The contact brushes <b>724</b> can have any suitable configuration that will allow the sampling module belt <b>708</b> to pass laterally beneath the contact brushes <b>724</b> and reliably make electrical contact with the sampling module <b>709</b> loaded in the drive coupler <b>713</b> and ready for use. A spring loaded conductive ball bearing is one example of a contact brush <b>724</b> that could be used. A resilient conductive strip shaped to press against the inside surface of the flexible polymer sheet <b>727</b> along the sensor contact region <b>728</b> of the sampling module <b>709</b> is another embodiment of a contact brush <b>724</b>.
0366The sampling module cartridge <b>705</b> has a supply canister <b>729</b> and a receptacle canister <b>730</b>. The unused sampling modules of the sampling module belt <b>708</b> are disposed within the supply canister <b>729</b> and the sampling modules of the sampling module belt <b>708</b> that have been used are advanced serially after use into the receptacle canister <b>730</b>.
0367<figref idref="DRAWINGS">FIG. 77</figref> is a perspective view of a section of the sampling module belt <b>708</b> shown in the sampling module cartridge <b>705</b> in <figref idref="DRAWINGS">FIG. 74</figref>. The sampling module belt <b>708</b> has a plurality of sampling modules <b>709</b> connected in series by a sheet of flexible polymer <b>727</b>. The sampling module belt <b>708</b> shown in <figref idref="DRAWINGS">FIG. 77</figref> is formed from a plurality of sampling module body portions <b>731</b> that are disposed laterally adjacent each other and connected and sealed by a single sheet of flexible polymer <b>727</b>. The flexible polymer sheet <b>727</b> can optionally have sensor contacts <b>725</b>, flexible electrical conductors <b>732</b>, sample sensors <b>733</b> or any combination of these elements formed on the inside surface <b>734</b> of the flexible polymer sheet <b>727</b>. These electrical, optical or chemical elements can be formed by a variety of methods including vapor deposition and the like.
0368The proximal portion <b>735</b> of the flexible polymer sheet <b>727</b> has been folded over on itself in order to expose the sensor contacts <b>725</b> to the outside surface of the sampling module <b>709</b>. This makes electrical contact between the contact brushes <b>724</b> of the reader module <b>722</b> and the sensor contacts <b>725</b> easier to establish as the sampling modules <b>709</b> are advanced and loaded into position with the drive coupler <b>713</b> of the controllable driver <b>179</b> ready for use. The flexible polymer sheet <b>727</b> can be secured to the sampling module body portion <b>731</b> by adhesive bonding, solvent bonding, ultrasonic thermal bonding or any other suitable method.
0369<figref idref="DRAWINGS">FIG. 78</figref> shows a perspective view of a single sampling module <b>709</b> of the sampling module belt <b>708</b> of <figref idref="DRAWINGS">FIG. 77</figref> during the assembly phase of the sampling module <b>709</b>. The proximal portion <b>735</b> of the flexible polymer sheet <b>727</b> is being folded over on itself as shown in order to expose the sensor contacts <b>725</b> on the inside surface of the flexible polymer sheet <b>727</b>. <figref idref="DRAWINGS">FIG. 79</figref> is a bottom view of a section of the flexible polymer sheet <b>727</b> of the sampling module <b>709</b> of <figref idref="DRAWINGS">FIG. 78</figref> illustrating the sensor contacts <b>725</b>, flexible conductors <b>732</b> and sample sensors <b>733</b> deposited on the bottom surface of the flexible polymer sheet <b>727</b>.
0370A lancet <b>183</b> is shown disposed within the lancet channel <b>736</b> of the sampling module <b>709</b> of <figref idref="DRAWINGS">FIG. 78</figref> as well as within the lancet channels <b>736</b> of the sampling modules <b>709</b> of the sampling module belt <b>708</b> of <figref idref="DRAWINGS">FIG. 77</figref>. The lancet <b>183</b> has a tip <b>196</b> and a shaft portion <b>201</b> and a drive head <b>198</b>. The shaft portion <b>201</b> of the lancet slides within the lancet channel <b>736</b> of the sampling module <b>709</b> and the drive head <b>198</b> of the lancet <b>183</b> has clearance to move in a proximal and distal direction within the drive head slot <b>737</b> of the sampling module <b>709</b>. Disposed adjacent the drive head slot <b>737</b> and at least partially forming the drive head slot are a first protective strut <b>737</b>′ and a second protective strut <b>737</b>″ that are elongated and extend substantially parallel to the lancet <b>183</b>.
0371In one lancet <b>183</b> embodiment, the drive head <b>198</b> of the lancet <b>183</b> can have a width of about 0.9 to about 1.1 mm. The thickness of the drive head <b>198</b> of the lancet <b>183</b> can be about 0.4 to about 0.6 mm. The drive head slot <b>714</b> of the sampling module <b>709</b> should have a width that allows the drive head <b>198</b> to move freely within the drive head slot <b>714</b>. The shaft portion <b>201</b> of the lancet <b>183</b> can have a transverse dimension of about 50 mm to about 1000 mm. Typically, the shaft portion <b>201</b> of the lancet <b>183</b> has a round transverse cross section, however, other configurations are contemplated.
0372The sampling module body portions <b>731</b> and the sheet of flexible polymer <b>727</b> can both be made of polymethylmethacrylate (PMMA), or any other suitable polymer, such as those discussed above. The dimensions of a typical sampling module body portion <b>731</b> can be about 14 to about 18 mm in length, about 4 to about 5 mm in width, and about 1.5 to about 2.5 mm in thickness. In other embodiments, the length of the sample module body portion can be about 0.5 to about 2.0 inch and the transverse dimension can be about 0.1 to about 0.5 inch. The thickness of the flexible polymer sheet <b>727</b> can be about 100 to about 150 microns. The distance between adjacent sampling modules <b>709</b> in the sampling module belt <b>708</b> can vary from about 0.1 mm to about 0.3 mm, and in some embodiments, from about 0.2 to about 0.6.
0373<figref idref="DRAWINGS">FIGS. 80 and 81</figref> show a perspective view of the body portion <b>731</b> of the sampling module <b>709</b> of <figref idref="DRAWINGS">FIG. 77</figref> without the flexible polymer cover sheet <b>727</b> or lancet <b>183</b> shown for purposes of illustration. <figref idref="DRAWINGS">FIG. 81</figref> is an enlarged view of a portion of the body portion <b>731</b> of the sampling module <b>709</b> of <figref idref="DRAWINGS">FIG. 80</figref> illustrating the sampling site <b>715</b>, sample input cavity <b>715</b>′, sample input port <b>741</b>, sample flow channel <b>742</b>, analytical region <b>743</b>, control chamber <b>744</b>, vent <b>762</b>, lancet channel <b>736</b>, lancet channel stopping structures <b>747</b> and <b>748</b> and lancet guides <b>749</b>-<b>751</b> of the sampling module <b>709</b>.
0374The lancet channel <b>736</b> has a proximal end <b>752</b> and a distal end <b>753</b> and includes a series of lancet bearing guide portions <b>749</b>-<b>751</b> and sample flow stopping structures <b>747</b>-<b>748</b>. The lancet guides <b>749</b>-<b>751</b> may be configured to fit closely with the shaft of the lancet <b>183</b> and confine the lancet <b>183</b> to substantially axial movement. At the distal end <b>753</b> of the lancet channel <b>736</b> the distal-most lancet guide portion <b>749</b> is disposed adjacent the sample input port <b>741</b> and includes at its distal-most extremity, the lancet exit port <b>754</b> which is disposed adjacent the sample input cavity <b>715</b>′. The sample input cavity can have a transverse dimension, depth or both, of about 2 to 5 times the transverse dimension of the lancet <b>183</b>, or about 0.2 to about 2 mm, specifically, about 0.4 to about 1.5 mm, and more specifically, about 0.5 to about 1.0 mm. The distal-most lancet guide <b>749</b> can have inner transverse dimensions of about 300 to about 350 microns in width and about 300 to about 350 microns in depth. Proximal of the distal-most lancet guide portion <b>749</b> is a distal sample flow stop <b>747</b> that includes a chamber adjacent the distal-most lancet <b>749</b>. The chamber has a transverse dimension that is significantly larger than the transverse dimension of the distal-most lancet guide <b>749</b>. The chamber can have a width of about 600 to about 800 microns, and a depth of about 400 to about 600 microns and a length of about 2000 to about 2200 microns. The rapid transition of transverse dimension and cross sectional area between the distal-most lancet bearing guide <b>749</b> and the distal sample flow stop <b>747</b> interrupts the capillary action that draws a fluid sample through the sample input cavity <b>715</b>′ and into the lancet channel <b>736</b>.
0375A center lancet bearing guide <b>750</b> is disposed proximal of the distal lancet channel stop <b>747</b> and can have dimensions similar to those of the distal-most lancet bearing guide <b>749</b>. Proximal of the center lancet guide <b>750</b> is a proximal lancet channel stop <b>748</b> with a chamber. The dimensions of the proximal lancet channel stop can be the same or similar to those of the distal lancet channel stop <b>747</b>. The proximal lancet channel stop <b>748</b> can have a width of about 600 to about 800 microns, and a depth of about 400 to about 600 microns and a length of about 2800 to about 3000 microns. Proximal of the proximal lancet channel stop <b>748</b> is a proximal lancet guide <b>751</b>. The proximal lancet guide <b>751</b> can dimensions similar to those of the other lancet guide <b>749</b> and <b>750</b> portions with inner transverse dimensions of about 300 to about 350 microns in width and about 300 to about 350 microns in depth. Typically, the transverse dimension of the lancet guides <b>749</b>-<b>751</b> are about 10 percent larger than the transverse dimension of the shaft portion <b>201</b> of the lancet <b>183</b> that the lancet guides <b>749</b>-<b>751</b> are configured to guide.
0376A proximal fracturable seal (not shown) can be positioned between the proximal lancet guide <b>751</b> and the shaft portion <b>201</b> of the lancet <b>183</b> that seals the chamber of the proximal lancet channel stop <b>748</b> from the outside environment. The fracturable seal seals the chamber of the proximal lancet channel stop <b>748</b> and other interior portions of the sample chamber from the outside environment when the sampling module <b>709</b> is stored for use. The fracturable seal remains intact until the lancet <b>183</b> is driven distally during a lancet cycle at which point the seal is broken and the sterile interior portion of the sample chamber is exposed and ready to accept input of a liquid sample, such as a sample of blood. A distal fracturable seal (not shown) can be disposed between the lancet <b>183</b> and the distal-most lancet guide <b>749</b> of the sampling module <b>709</b> to seal the distal end <b>753</b> of the lancet channel <b>736</b> and sample input port <b>741</b> to maintain sterility of the interior portion of the sampling module <b>709</b> until the lancet <b>183</b> is driven forward during a lancing cycle.
0377Adjacent the lancet exit port <b>754</b> within the sample input cavity <b>715</b>′ is the sample input port <b>741</b> that is configured to accept a fluid sample that emanates into the sample input cavity <b>715</b>′ from target tissue <b>233</b> at a lancing site after a lancing cycle. The dimensions of the sample input port <b>741</b> can a depth of about 60 to about 70 microns, a width of about 400 to about 600 microns. The sample input cavity can have a transverse dimension of about 2 to about 5 times the transverse dimension of the lancet <b>183</b>, or about 400 to about 1000 microns. The sample input cavity serves to accept a fluid sample as it emanates from lanced tissue and direct the fluid sample to the sample input port <b>741</b> and thereafter the sample flow channel <b>742</b>. The sample flow channel <b>742</b> is disposed between and in fluid communication with the sample input port <b>741</b> and the analytical region <b>743</b>. The transverse dimensions of the sample flow channel <b>742</b> can be the same as the transverse dimensions of the sample input port <b>741</b> with a depth of about 60 to about 70 microns, a width of about 400 to about 600 microns. The length of the sample flow channel <b>742</b> can be about 900 to about 1100 microns. Thus, in use, target tissue is disposed on the sampling site <b>715</b> and a lancing cycle initiated. Once the target tissue <b>233</b> has been lanced and the sample begins to flow therefrom, the sample enters the sample input cavity <b>715</b>′ and then the sample input port <b>741</b>. The sample input cavity <b>715</b>′ may be sized and configured to facilitate sampling success by applying pressure to a perimeter of target tissue <b>233</b> before, during and after the lancing cycle and hold the wound track open after the lancing cycle to allow blood or other fluid to flow from the wound track and into the sample input cavity <b>715</b>′. From the sample input port <b>741</b>, the sample in then drawn by capillary or other forces through the sample flow channel <b>742</b> and into the analytical region <b>743</b> and ultimately into the control chamber <b>744</b>. The control chamber <b>744</b> may be used to provide indirect confirmation of a complete fill of the analytical region <b>743</b> by a sample fluid. If a fluid sample has been detected in the control chamber <b>744</b>, this confirms that the sample has completely filled the analytical region <b>743</b>. Thus, sample detectors may be positioned within the control chamber <b>744</b> to confirm filling of the analytical region <b>743</b>.
0378The analytical region <b>743</b> is disposed between and in fluid communication with the sample flow channel <b>742</b> and the control chamber <b>744</b>. The analytical region <b>743</b> can have a depth of about 60 to about 70 microns, a width of about 900 to about 1100 microns and a length of about 5 to about 6 mm. A typical volume for the analytical region <b>743</b> can be about 380 to about 400 nanoliters. The control chamber <b>744</b> is disposed adjacent to and proximal of the analytical region <b>743</b> and can have a transverse dimension or diameter of about 900 to about 1100 microns and a depth of about 60 to about 70 microns.
0379The control chamber <b>744</b> is vented to the chamber of the proximal lancet channel stop <b>748</b> by a vent that is disposed between and in fluid communication with the control chamber <b>744</b> and the chamber of the proximal lancet channel stop <b>748</b>. Vent <b>762</b> can have transverse dimensions that are the same or similar to those of the sample flow channel <b>742</b> disposed between the analytical region <b>743</b> and the sample input port <b>741</b>. Any of the interior surfaces of the sample input port <b>741</b>, sample flow channels <b>742</b> and <b>762</b>, analytical region <b>743</b>, vents <b>745</b> or control chamber <b>744</b> can be coated with a coating that promotes capillary action. A hydrophilic coating such as a detergent is an example of such a coating.
0380The analytical region <b>743</b> accommodates a blood sample that travels by capillary action from the sampling site <b>715</b> through the sample input cavity <b>715</b>′ and into the sample input port <b>741</b>, through the sample flow channel <b>742</b> and into the analytical region <b>743</b>. The blood can then travel into the control chamber <b>744</b>. The control chamber <b>744</b> and analytical region <b>743</b> are both vented by the vent <b>762</b> that allows gases to escape and prevents bubble formation and entrapment of a sample in the analytical region <b>743</b> and control chamber <b>744</b>. Note that, in addition to capillary action, flow of a blood sample into the analytical region <b>743</b> can be facilitated or accomplished by application of vacuum, mechanical pumping or any other suitable method.
0381Once a blood sample is disposed within the analytical region <b>743</b>, analytical testing can be performed on the sample with the results transmitted to the processor <b>193</b> by electrical conductors <b>732</b>, optically or by any other suitable method or means. In some embodiments, it may be desirable to confirm that the blood sample has filled the analytical region <b>743</b> and that an appropriate amount of sample is present in the chamber in order to carry out the analysis on the sample.
0382Confirmation of sample arrival in either the analytical region <b>743</b> or the control chamber <b>744</b> can be achieved visually, through the flexible polymer sheet <b>727</b> which can be transparent. However, it may be desirable in some embodiments to use a very small amount of blood sample in order to reduce the pain and discomfort to the patient during the lancing cycle. For sampling module <b>709</b> embodiments such as described here, having the sample input cavity <b>715</b>′ and sample input port <b>741</b> adjacent the lancet exit port <b>754</b> allows the blood sample to be collected from the patient's skin <b>233</b> without the need for moving the sampling module <b>709</b> between the lancing cycle and the sample collection process. As such, the user does not need to be able to see the sample in order to have it transferred into the sampling module <b>709</b>. Because of this, the position of the sample input cavity <b>715</b>′ and the sample input port <b>741</b> adjacent the lancet exit port <b>754</b> allows a very small amount of sample to be reliably obtained and tested.
0383Samples on the order of tens of nanoliters, such as about 10 to about 50 nanoliters can be reliably collected and tested with a sampling module <b>709</b>. This size of blood sample is too small to see and reliably verify visually. Therefore, it is necessary to have another method to confirm the presence of the blood sample in the analytical region <b>743</b>. Sample sensors <b>733</b>, such as the thermal sample sensors discussed above can positioned in the analytical region <b>743</b> or control chamber <b>744</b> to confirm the arrival of an appropriate amount of blood sample.
0384In addition, optical methods, such as spectroscopic analysis of the contents of the analytical region <b>743</b> or control chamber <b>744</b> could be used to confirm arrival of the blood sample. Other methods such as electrical detection could also be used and these same detection methods can also be disposed anywhere along the sample flow path through the sampling module <b>709</b> to confirm the position or progress of the sample (or samples) as it moves along the flow path as indicated by the arrows <b>763</b> in <figref idref="DRAWINGS">FIG. 81</figref>. The detection methods described above can also be useful for analytical methods requiring an accurate start time.
0385The requirement for having an accurate start time for an analytical method can in turn require rapid filling of an analytical region <b>743</b> because many analytical processes begin once the blood sample enters the analytical region <b>743</b>. If the analytical region <b>743</b> takes too long to fill, the portion of the blood sample that first enters the analytical region <b>743</b> will have been tested for a longer time that the last portion of the sample to enter the analytical region <b>743</b> which can result in inaccurate results. Therefore, it may be desirable in these circumstances to have the blood sample flow first to a reservoir, filling the reservoir, and then have the sample rapidly flow all at once from the reservoir into the analytical region <b>743</b>.
0386In one embodiment of the sampling module <b>709</b>, the analytical region <b>743</b> can have a transverse cross section that is substantially greater than a transverse cross section of the control chamber <b>744</b>. The change in transverse cross section can be accomplished by restrictions in the lateral transverse dimension of the control chamber <b>744</b> versus the analytical region <b>743</b>, by step decreases in the depth of the control chamber <b>744</b>, or any other suitable method. Such a step between the analytical region <b>743</b> and the control chamber <b>744</b> is shown in <figref idref="DRAWINGS">FIG. 81</figref>. In such an embodiment, the analytical region <b>743</b> can behave as a sample reservoir and the control chamber <b>744</b> as an analytical region that requires rapid or nearly instantaneous filling in order to have a consistent analysis start time. The analytical region <b>743</b> fills by a flow of sample from the sample flow channel <b>742</b> until the analytical region is full and the sample reaches the step decrease in chamber depth at the boundary with the control chamber <b>744</b>. Once the sample reaches the step decrease in cross sectional area of the control chamber <b>744</b>, the sample then rapidly fills the control chamber <b>744</b> by virtue of the enhanced capillary action of the reduced cross sectional area of the control chamber <b>744</b>. The rapid filling of the control chamber allows any analytical process initiated by the presence of sample to be carried out in the control chamber <b>744</b> with a reliable start time for the analytical process for the entire sample of the control chamber <b>744</b>.
0387Filling by capillary force is passive. It can also be useful for some types of analytical testing to discard the first portion of a sample that enters the sampling module <b>709</b>, such as the case where there may be interstitial fluid contamination of the first portion of the sample. Such a contaminated portion of a sample can be discarded by having a blind channel or reservoir that draws the sample by capillary action into a side sample flow channel (not shown) until the side sample flow channel or reservoir in fluid communication therewith, is full. The remainder of the sample can then proceed to a sample flow channel adjacent the blind sample flow channel to the analytical region <b>743</b>.
0388For some types of analytical testing, it may be advantageous to have multiple analytical regions <b>743</b> in a single sampling module <b>709</b>. In this way multiple iterations of the same type of analysis could be performed in order to derive some statistical information, e.g. averages, variation or confirmation of a given test or multiple tests measuring various different parameters could be performed in different analytical regions <b>743</b> in the same sampling module <b>709</b> filled with a blood sample from a single lancing cycle.
0389<figref idref="DRAWINGS">FIG. 82</figref> is an enlarged elevational view of a portion of an alternative embodiment of a sampling module <b>766</b> having a plurality of small volume analytical regions <b>767</b>. The small volume analytical regions <b>767</b> can have dimensions of about 40 to about 60 microns in width in both directions and a depth that yields a volume for each analytical region <b>767</b> of about 1 nanoliter to about 100 nanoliters, specifically about 10 nanoliters to about 50 nanoliters. The array of small volume analytical regions <b>767</b> can be filled by capillary action through a sample flow channel <b>768</b> that branches at a first branch point <b>769</b>, a second branch point <b>770</b> and a third branch point <b>771</b>. Each small volume analytical region <b>767</b> can be used to perform a like analytical test or a variety of different tests can be performed in the various analytical regions <b>767</b>.
0390For some analytical tests, the analytical regions <b>767</b> must have maintain a very accurate volume, as some of the analytical tests that can be performed on a blood sample are volume dependent. Some analytical testing methods detect glucose levels by measuring the rate or kinetic of glucose consumption. Blood volume required for these tests is on the order of about 1 to about 3 microliters. The kinetic analysis is not sensitive to variations in the volume of the blood sample as it depends on the concentration of glucose in the relatively large volume sample with the concentration of glucose remaining essentially constant throughout the analysis. Because this type of analysis dynamically consumes glucose during the testing, it is not suitable for use with small samples, e.g. samples on the order of tens of nanoliters where the consumption of glucose would alter the concentration of glucose.
0391Another analytical method uses coulomb metric measurement of glucose concentration. This method is accurate if the sample volume is less than about 1 microliter and the volume of the analytical region is precisely controlled. The accuracy and the speed of the method is dependent on the small and precisely known volume of the analytical region <b>767</b> because the rate of the analysis is volume dependent and large volumes slow the reaction time and negatively impact the accuracy of the measurement.
0392Another analytical method uses an optical fluorescence decay measurement that allows very small sample volumes to be analyzed. This method also requires that the volume of the analytical region <b>767</b> be precisely controlled. The small volume analytical regions <b>767</b> discussed above can meet the criteria of maintaining small accurately controlled volumes when the small volume analytical regions <b>767</b> are formed using precision manufacturing techniques. Accurately formed small volume analytical regions <b>767</b> can be formed in materials such as PMMA by methods such as molding and stamping. Machining and etching, either by chemical or laser processes can also be used. Vapor deposition and lithography can also be used to achieve the desired results.
0393The sampling modules <b>709</b> and <b>766</b> discussed above all are directed to embodiments that both house the lancet <b>183</b> and have the ability to collect and analyze a sample. In some embodiments of a sampling module, the lancet <b>183</b> may be housed and a sample collected in a sample reservoir without any analytical function. In such an embodiment, the analysis of the sample in the sample reservoir may be carried out by transferring the sample from the reservoir to a separate analyzer. In addition, some modules only serve to house a lancet <b>183</b> without any sample acquisition capability at all. The body portion <b>774</b> of such a lancet module <b>775</b> is shown in <figref idref="DRAWINGS">FIG. 83</figref>. The lancet module <b>775</b> has an outer structure similar to that of the sampling modules <b>709</b> and <b>766</b> discussed above, and can be made from the same or similar materials.
0394A flexible polymer sheet <b>727</b> (not shown) can be used to cover the face of the lancet module <b>775</b> and contain the lancet <b>183</b> in a lancet channel <b>776</b> that extends longitudinally in the lancet module body portion <b>774</b>. The flexible sheet of polymer <b>727</b> can be from the same material and have the same dimensions as the flexible polymer sheet <b>727</b> discussed above. Note that the proximal portion of the flexible polymer sheet <b>727</b> need not be folded over on itself because there are no sensor contacts <b>725</b> to expose. The flexible polymer sheet <b>727</b> in such a lancet module <b>775</b> serves only to confine the lancet <b>183</b> in the lancet channel <b>776</b>. The lancet module <b>775</b> can be configured in a lancet module belt, similar to the sampling module belt <b>708</b> discussed above with the flexible polymer sheet <b>727</b> acting as the belt. A drive head slot <b>777</b> is dispose proximal of the lancet channel <b>776</b>.
0395With regard to the tissue penetration sampling device <b>180</b> of <figref idref="DRAWINGS">FIG. 74</figref>, use of the device <b>180</b> begins with the loading of a sampling module cartridge <b>705</b> into the controllable driver housing <b>706</b> so as to couple the cartridge <b>705</b> to the controllable driver housing <b>706</b> and engage the sampling module belt <b>708</b> with the ratchet drive <b>707</b> and drive coupler <b>713</b> of the controllable driver <b>179</b>. The drive coupler <b>713</b> can have a T-slot configuration such as shown in <figref idref="DRAWINGS">FIGS. 84 and 85</figref>. The distal end of the elongate coupler shaft <b>184</b> is secured to the drive coupler <b>713</b> which has a main body portion <b>779</b>, a first and second guide ramp <b>780</b> and <b>781</b> and a T-slot <b>714</b> disposed within the main body portion <b>779</b>. The T-slot <b>714</b> is configured to accept the drive head <b>198</b> of the lancet <b>183</b>. After the sampling module cartridge <b>705</b> is loaded into the controllable driver housing <b>706</b>, the sampling module belt <b>708</b> is advanced laterally until the drive head <b>198</b> of a lancet <b>183</b> of one of the sampling modules <b>709</b> is fed into the drive coupler <b>713</b> as shown in <figref idref="DRAWINGS">FIGS. 86-88</figref>. <figref idref="DRAWINGS">FIGS. 86-88</figref> also illustrate a lancet crimp device <b>783</b> that bends the shaft portion <b>201</b> of a used lancet <b>183</b> that is adjacent to the drive coupler <b>713</b>. This prevents the used lancet <b>183</b> from moving out through the module body <b>731</b> and being reused.
0396As the sampling modules <b>709</b> of the sampling module belt <b>708</b> are used sequentially, they are advanced laterally one at a time into the receptacle canister <b>730</b> where they are stored until the entire sampling module belt <b>708</b> is consumed. The receptacle canister <b>730</b> can then be properly disposed of in accordance with proper techniques for disposal of blood-contaminated waste. The sampling module cartridge <b>705</b> allows the user to perform multiple testing operations conveniently without being unnecessarily exposed to blood waste products and need only dispose of one cartridge after many uses instead of having to dispose of a contaminated lancet <b>183</b> or module <b>709</b> after each use.
0397<figref idref="DRAWINGS">FIGS. 89 and 90</figref> illustrate alternative embodiments of sampling module cartridges. <figref idref="DRAWINGS">FIG. 89</figref> shows a sampling module cartridge <b>784</b> in a carousel configuration with adjacent sampling modules <b>785</b> connected rigidly and with sensor contacts <b>786</b> from the analytical regions of the various sampling modules <b>785</b> disposed near an inner radius <b>787</b> of the carousel. The sampling modules <b>785</b> of the sampling module cartridge <b>784</b> are advanced through a drive coupler <b>713</b> but in a circular as opposed to a linear fashion.
0398<figref idref="DRAWINGS">FIG. 90</figref> illustrates a block of sampling modules <b>788</b> in a four by eight matrix. The drive head <b>198</b> of the lancets <b>183</b> of the sampling modules <b>789</b> shown in <figref idref="DRAWINGS">FIG. 90</figref> are engaged and driven using a different method from that of the drive coupler <b>713</b> discussed above. The drive heads <b>198</b> of the lancets <b>183</b> have an adhesive coating <b>790</b> that mates with and secures to the drive coupler <b>791</b> of the lancet driver <b>179</b>, which can be any of the drivers, including controllable drivers, discussed above.
0399The distal end <b>792</b> of the drive coupler <b>791</b> contacts and sticks to the adhesive <b>790</b> of proximal surface of the drive head <b>198</b> of the lancet <b>183</b> during the beginning of the lancet cycle. The driver coupler <b>791</b> pushes the lancet <b>183</b> into the target tissue <b>237</b> to a desired depth of penetration and stops. The drive coupler <b>791</b> then retracts the lancet <b>183</b> from the tissue <b>233</b> using the adhesive contact between the proximal surface of the drive head <b>198</b> of the lancet <b>183</b> and distal end surface of the drive coupler <b>791</b>, which is shaped to mate with the proximal surface.
0400At the top of the retraction stroke, a pair of hooked members <b>793</b> which are secured to the sampling module <b>789</b> engage the proximal surface of the drive head <b>198</b> and prevent any further retrograde motion by the drive head <b>198</b> and lancet <b>183</b>. As a result, the drive coupler <b>791</b> breaks the adhesive bond with the drive head <b>198</b> and can then be advanced by an indexing operation to the next sampling module <b>789</b> to be used.
0401<figref idref="DRAWINGS">FIG. 91</figref> is a side view of an alternative embodiment of a drive coupler <b>796</b> having a lateral slot <b>797</b> configured to accept the L-shaped drive head <b>798</b> of the lancet <b>799</b> that is disposed within a lancet module <b>800</b> and shown with the L-shaped drive head <b>798</b> loaded in the lateral slot <b>797</b>. <figref idref="DRAWINGS">FIG. 92</figref> is an exploded view of the drive coupler <b>796</b>, lancet <b>799</b> with L-shaped drive head <b>798</b> and lancet module <b>800</b> of <figref idref="DRAWINGS">FIG. 91</figref>. This type of drive coupler <b>796</b> and drive head <b>798</b> arrangements could be substituted for the configuration discussed above with regard to <figref idref="DRAWINGS">FIGS. 84-88</figref>. The L-shaped embodiment of the drive head <b>798</b> may be a less expensive option for producing a coupling arrangement that allows serial advancement of a sampling module belt or lancet module belt through the drive coupler <b>796</b> of a lancet driver, such as a controllable lancet driver <b>179</b>.
0402For some embodiments of multiple lancing devices <b>180</b>, it may be desirable to have a high capacity-lancing device that does not require a lancet module <b>775</b> in order to house the lancets <b>183</b> stored in a cartridge. Eliminating the lancet modules <b>775</b> from a multiple lancet device <b>180</b> allows for a higher capacity cartridge because the volume of the cartridge is not taken up with the bulk of multiple modules <b>775</b>. <figref idref="DRAWINGS">FIGS. 93-96</figref> illustrate a high capacity lancet cartridge coupled to a belt advance mechanism <b>804</b>. The belt advance mechanism <b>804</b> is secured to a controlled driver <b>179</b> housing which contains a controlled electromagnetic driver.
0403The lancet cartridge <b>803</b> has a supply canister <b>805</b> and a receptacle canister <b>806</b>. A lancet belt <b>807</b> is disposed within the supply canister <b>805</b>. The lancet belt <b>807</b> contains multiple sterile lancets <b>183</b> with the shaft portion <b>201</b> of the lancets <b>183</b> disposed between the adhesive surface <b>808</b> of a first carrier tape <b>809</b> and the adhesive surface <b>810</b> of a second carrier tape <b>811</b> with the adhesive surfaces <b>808</b> and <b>810</b> pressed together around the shaft portion <b>201</b> of the lancets <b>183</b> to hold them securely in the lancet belt <b>807</b>. The lancets <b>183</b> have drive heads <b>198</b> which are configured to be laterally engaged with a drive coupler <b>713</b>, which is secured to an elongate coupler shaft <b>184</b> of the controllable driver <b>179</b>.
0404The belt advance mechanism <b>804</b> includes a first cog roller <b>814</b> and a second cog roller <b>815</b> that have synchronized rotational motion and are advanced in unison in an incremental indexed motion. The indexed motion of the first and second cog rollers <b>814</b> and <b>815</b> advances the lancet belt <b>807</b> in units of distance equal to the distance between the lancets <b>183</b> disposed in the lancet belt <b>807</b>. The belt advance mechanism <b>804</b> also includes a first take-up roller <b>816</b> and a second take-up roller <b>817</b> that are configured to take up slack in the first and second carrier tapes <b>809</b> and <b>811</b> respectively.
0405When a lancet belt cartridge <b>803</b> is loaded in the belt advance mechanism <b>804</b>, a lead portion <b>818</b> of the first carrier tape <b>809</b> is disposed between a first cog roller <b>814</b> and a second cog roller <b>815</b> of the belt advance mechanism <b>804</b>. The lead portion <b>818</b> of the first carrier tape <b>809</b> wraps around the outer surface <b>819</b> of the first turning roller <b>827</b>, and again engages roller <b>814</b> with the cogs <b>820</b> of the first cog roller <b>814</b> engaged with mating holes <b>821</b> in the first carrier tape <b>809</b>. The lead portion <b>818</b> of the first carrier tape <b>809</b> is then secured to a first take-up roller <b>816</b>. A lead portion <b>822</b> of the second carrier tape <b>811</b> is also disposed between the first cog roller <b>814</b> and second cog roller <b>815</b> and is wrapped around an outer surface <b>823</b> of the second turning roller <b>828</b>, and again engages roller <b>815</b> with the cogs <b>826</b>′ of the second cog roller <b>815</b> engaged in with mating holes <b>825</b> of the second carrier tape <b>811</b>. The lead portion <b>822</b> of the second carrier tape <b>811</b> is thereafter secured to a second take-up roller <b>817</b>.
0406As the first and second cog rollers <b>814</b> and <b>815</b> are advanced, the turning rollers <b>827</b> and <b>828</b> peel the first and second carrier tapes <b>809</b> and <b>811</b> apart and expose a lancet <b>183</b>. The added length or slack of the portions of the first and second carrier tapes <b>809</b> and <b>811</b> produced from the advancement of the first and second cog rollers <b>814</b> and <b>815</b> is taken up by the first and second take-up rollers <b>816</b> and <b>817</b>. As a lancet <b>183</b> is peeled out of the first and second carrier tapes <b>809</b> and <b>811</b>, the exposed lancet <b>183</b> is captured by a lancet guide wheel <b>826</b>′ of the belt advance mechanism <b>804</b>, shown in <figref idref="DRAWINGS">FIG. 96</figref>, which is synchronized with the first and second cog rollers <b>814</b> and <b>815</b>. The lancet guide wheel <b>826</b>′ then advances the lancet <b>183</b> laterally until the drive head <b>198</b> of the lancet <b>183</b> is loaded into the drive coupler <b>713</b> of the controllable driver <b>179</b>. The controllable driver <b>179</b> can then be activated driving the lancet <b>183</b> into the target tissue <b>233</b> and retracted to complete the lancing cycle.
0407Once the lancing cycle is complete, the belt advance mechanism <b>804</b> can once again be activated which rotates the lancet guide wheel <b>826</b> and advances the used lancet <b>183</b> laterally and into the receptacle canister <b>806</b>. At the same time, a new unused lancet <b>183</b> is loaded into the drive coupler <b>713</b> and readied for the next lancing cycle. This repeating sequential use of the multiple lancing device <b>180</b> continues until all lancets <b>183</b> in the lancet belt <b>807</b> have been used and disposed of in the receptacle canister <b>806</b>. After the last lancet <b>183</b> has been consumed, the lancet belt cartridge <b>803</b> can then be removed and disposed of without exposing the user to any blood contaminated materials. The belt advance mechanism <b>804</b> can be activated by a variety of methods, including a motorized drive or a manually operated thumbwheel which is coupled to the first and second cog rollers <b>814</b> and <b>815</b> and lancet guide wheel <b>826</b>.
0408Although discussion of the devices described herein has been directed primarily to substantially painless methods and devices for access to capillary blood of a patient, there are many other uses for the devices and methods. For example, the tissue penetration devices discussed herein could be used for substantially painless delivery of small amounts of drugs, or other bioactive agents such as gene therapy agents, vectors, radioactive sources etc. As such, it is contemplated that the tissue penetration devices and lancet devices discussed herein could be used to delivery agents to positions within a patient's body as well as taking materials from a patient's body such as blood, lymph fluid, spinal fluid and the like. Drugs delivered may include analgesics that would further reduce the pain perceived by the patient upon penetration of the patient's body tissue, as well as anticoagulants that may facilitate the successful acquisition of a blood sample upon penetration of the patient's tissue.
0409Referring to <figref idref="DRAWINGS">FIGS. 97-101</figref>, a device for injecting a drug or other useful material into the tissue of a patient is illustrated. The ability to localize an injection or vaccine to a specific site within a tissue, layers of tissue or organ within the body can be important. For example, epithelial tumors can be treated by injection of antigens, cytokine, or colony stimulating factor by hypodermic needle or high-pressure injection sufficient for the antigen to enter at least the epidermis or the dermis of a patient. Often, the efficacy of a drug or combination drug therapy depends on targeted delivery to localized areas thus affecting treatment outcome.
0410The ability to accurately deliver drugs or vaccinations to a specific depth within the skin or tissue layer may avoid wastage of expensive drug therapies therefore impacting cost effectiveness of a particular treatment. In addition, the ability to deliver a drug or other agent to a precise depth can be a clear advantage where the outcome of treatment depends on precise localized drug delivery (such as with the treatment of intralesional immunotherapy). Also, rapid insertion velocity of a hypodermic needle to a precise predetermined depth in a patient's skin is expected to reduce pain of insertion of the needle into the skin. Rapid insertion and penetration depth of a hypodermic needle, or any other suitable elongated delivery device suitable for penetrating tissue, can be accurately controlled by virtue of a position feedback loop of a controllable driver coupled to the hypodermic needle.
0411<figref idref="DRAWINGS">FIG. 97</figref> illustrates <b>901</b> distal end <b>901</b> of a hypodermic needle <b>902</b> being driven into layers of skin tissue <b>903</b> by an electromagnetic controllable driver <b>904</b>. The electromagnetic controllable driver <b>904</b> of <figref idref="DRAWINGS">FIG. 79</figref> can have any suitable configuration, such as the configuration of electromagnetic controllable drivers discussed above. The layers of skin <b>903</b> being penetrated include the stratum corneum <b>905</b>, the stratum lucidum <b>906</b>, the stratum granulosum <b>907</b>, the stratum spinosum <b>908</b>, the stratum basale <b>909</b> and the dermis <b>911</b>. The thickness of the stratum corneum <b>905</b> is typically about 300 micrometers in thickness. The portion of the epidermis excluding the stratum corneum <b>905</b> includes the stratum lucidum <b>906</b>, stratum granulosum <b>907</b>, and stratum basale can be about 200 micrometers in thickness. The dermis can be about 1000 micrometers in thickness. In <figref idref="DRAWINGS">FIG. 97</figref>, an outlet port <b>912</b> of the hypodermic needle <b>902</b> is shown disposed approximately in the stratum spinosum <b>908</b> layer of the skin <b>903</b> injecting an agent <b>913</b> into the stratum spinosum <b>908</b>.
0412<figref idref="DRAWINGS">FIGS. 98-101</figref> illustrate an agent injection module <b>915</b> including an injection member <b>916</b>, that includes a collapsible canister <b>917</b> and the hypodermic needle <b>902</b>, that may be driven or actuated by a controllable driver, such as any of the controllable drivers discussed above, to drive the hypodermic needle into the skin <b>903</b> for injection of drugs, vaccines or the like. The agent injection module <b>915</b> has a reservoir, which can be in the form of the collapsible canister <b>917</b> having a main chamber <b>918</b>, such as shown in <figref idref="DRAWINGS">FIG. 98</figref>, for the drug or vaccine <b>913</b> to be injected. A cassette of a plurality of agent injection modules <b>915</b> (not shown) may provide a series of metered doses for long-term medication needs. Such a cassette may be configured similarly to the module cassettes discussed above. Agent injection modules <b>915</b> and needles <b>902</b> may be disposable, avoiding biohazard concerns from unspent drug or used hypodermic needles <b>902</b>. The geometry of the cutting facets <b>921</b> of the hypodermic needle shown in <figref idref="DRAWINGS">FIG. 79</figref>, may be the same or similar to the geometry of the cutting facets of the lancet <b>183</b> discussed above.
0413Inherent in the position and velocity control system of some embodiments of a controllable driver is the ability to precisely determine the position or penetration depth of the hypodermic needle <b>902</b> relative to the controllable driver or layers of target tissue or skin <b>903</b> being penetrated. For embodiments of controllable drivers that use optical encoders for position sensors, such as an Agilent HEDS 9200 series, and using a four edge detection algorithm, it is possible to achieve an in plane spatial resolution of +/−17 μm in depth. If a total tissue penetration stroke is about 3 mm in length, such as might be used for intradermal or subcutaneous injection, a total of 88 position points can be resolved along the penetration stroke. A spatial resolution this fine allows precise placement of a distal tip <b>901</b> or outlet port <b>912</b> of the hypodermic needle <b>902</b> with respect to the layers of the skin <b>903</b> during delivery of the agent or drug <b>913</b>. In some embodiments, a displacement accuracy of better than about 200 microns can be achieved, in others a displacement accuracy of better than about 40 microns can be achieved.
0414The agent injection module <b>915</b> includes the injection member <b>916</b> which includes the hypodermic needle <b>902</b> and drug reservoir or collapsible canister <b>917</b>, which may couple to an elongated coupler shaft <b>184</b> via a drive coupler <b>185</b> as shown. The hypodermic needle <b>902</b> can be driven to a desired penetration depth, and then the drug or other agent <b>913</b>, such as a vaccine, is passed into an inlet port <b>922</b> of the needle <b>902</b> through a central lumen <b>923</b> of the hypodermic needle <b>902</b> as shown by arrow <b>924</b>, shown in <figref idref="DRAWINGS">FIG. 98</figref>, and out of the outlet port <b>912</b> at the distal end <b>901</b> of the hypodermic needle <b>902</b>, shown in <figref idref="DRAWINGS">FIG. 97</figref>.
0415Drug or agent delivery can occur at the point of maximum penetration, or following retraction of the hypodermic needle <b>902</b>. In some embodiments, it may be desirable to deliver the drug or agent <b>913</b> during insertion of the hypodermic needle <b>902</b>. Drug or agent delivery can continue as the hypodermic needle <b>902</b> is being withdrawn (this is commonly the practice during anesthesia in dental work). Alternatively drug delivery can occur while the needle <b>902</b> is stationary during any part of the retraction phase.
0416The hollow hypodermic needle <b>902</b> is fitted with the collapsible canister <b>917</b> containing a drug or other agent <b>913</b> to be dispensed. The walls <b>928</b> of this collapsible canister <b>917</b> can be made of a soft resilient material such as plastic, rubber, or any other suitable material. A distal plate <b>925</b> is disposed at the distal end <b>926</b> of the collapsible canister is fixed securely to the shaft <b>927</b> of the hypodermic needle proximal of the distal tip <b>901</b> of the hypodermic needle <b>902</b>. The distal plate <b>925</b> is sealed and secured to the shaft <b>927</b> of the hypodermic needle <b>902</b> to prevent leakage of the medication <b>913</b> from the collapsible canister <b>917</b>.
0417A proximal plate <b>931</b> disposed at a proximal end <b>932</b> of the collapsible canister <b>917</b> is slidingly fitted to a proximal portion <b>933</b> of the shaft <b>927</b> of the hypodermic needle <b>902</b> with a sliding seal <b>934</b>. The sliding seal <b>934</b> prevents leakage of the agent or medication <b>913</b> between the seal <b>934</b> and an outside surface of the shaft <b>927</b> of the hypodermic needle <b>902</b>. The sliding seal allows the proximal plate <b>931</b> of the collapsible canister <b>917</b> to slide axially along the needle <b>902</b> relative to the distal plate <b>925</b> of the collapsible canister <b>917</b>. A drug dose may be loaded into the main chamber <b>918</b> of the collapsible canister <b>917</b> during manufacture, and the entire assembly protected during shipping and storage by packaging and guide fins <b>935</b> surrounding the drive head slot <b>936</b> of the agent injection module <b>915</b>.
0418An injection cycle may begin when the agent injection module <b>915</b> is loaded into a ratchet advance mechanism (not shown), and registered at a drive position with a drive head <b>937</b> of the hypodermic needle <b>902</b> engaged in the drive coupler <b>185</b>. The position of the hypodermic needle <b>902</b> and collapsible canister <b>917</b> in this ready position is shown in <figref idref="DRAWINGS">FIG. 99</figref>.
0419Once the drive head <b>937</b> of the agent injection module <b>915</b> is loaded into the driver coupler <b>185</b>, the controllable driver can then be used to launch the injection member <b>916</b> including the hypodermic needle <b>902</b> and collapsible canister <b>917</b> towards and into the patient's tissue <b>903</b> at a high velocity to a predetermined depth into the patient's skin or other organ. The velocity of the injection member <b>916</b> at the point of contact with the patient's skin <b>903</b> or other tissue can be up to about 10 meters per second for some embodiments, specifically, about 2 to about 5 m/s. In some embodiments, the velocity of the injection member <b>916</b> may be about 2 to about 10 m/s at the point of contact with the patient's skin <b>903</b>. As the collapsible canister <b>917</b> moves with the hypodermic needle <b>902</b>, the proximal plate <b>931</b> of the collapsible canister <b>917</b> passes between two latch springs <b>938</b> of module body <b>939</b> that snap in behind the proximal plate <b>931</b> when the collapsible canister <b>917</b> reaches the end of the penetration stroke, as shown in <figref idref="DRAWINGS">FIG. 100</figref>.
0420The controllable driver then reverses, applies force in the opposite retrograde direction and begins to slowly (relative to the velocity of the penetration stroke) retract the hypodermic needle <b>902</b>. The hypodermic needle <b>902</b> slides through the sliding seal <b>934</b> of the collapsible canister <b>917</b> while carrying the distal plate <b>925</b> of the collapsible canister with it in a proximal direction relative to the proximal plate <b>931</b> of the collapsible canister <b>917</b>. This relative motion between the distal plate <b>925</b> of the collapsible canister <b>917</b> and the proximal plate <b>931</b> of the collapsible canister <b>917</b> causes the volume of the main chamber <b>918</b> to decrease. The decreasing volume of the main chamber <b>918</b> forces the drug or other agent <b>913</b> disposed within the main chamber <b>918</b> of the collapsible canister <b>917</b> out of the main chamber <b>918</b> into the inlet port <b>922</b> in the shaft <b>927</b> of the hypodermic needle <b>902</b>. The inlet port <b>922</b> of the hypodermic needle <b>902</b> is disposed within an in fluid communication with the main chamber <b>918</b> of the collapsible canister <b>917</b> as shown in <figref idref="DRAWINGS">FIG. 80</figref>. The drug or agent then passes through the central lumen <b>923</b> of the hollow shaft <b>927</b> of the hypodermic needle <b>902</b> and is then dispensed from the output port <b>912</b> at the distal end <b>901</b> of the hypodermic needle <b>902</b> into the target tissue <b>903</b>. The rate of perfusion of the drug or other agent <b>913</b> may be determined by an inside diameter or transverse dimension of the collapsible canister <b>917</b>. The rate of perfusion may also be determined by the viscosity of the drug or agent <b>913</b> being delivered, the transverse dimension or diameter of the central lumen <b>923</b>, the input port <b>922</b>, or the output port <b>912</b> of the hypodermic needle <b>902</b>, as well as other parameters.
0421During the proximal retrograde retraction stroke of the hypodermic needle <b>902</b>, drug delivery continues until the main chamber <b>918</b> of the collapsible canister <b>917</b> is fully collapsed as shown in <figref idref="DRAWINGS">FIG. 101</figref>. At this point, the drive coupler <b>185</b> may continue to be retracted until the drive head <b>937</b> of the hypodermic needle <b>902</b> breaks free or the distal seal <b>941</b> between the distal plate <b>925</b> of the chamber and the hypodermic needle <b>902</b> fails, allowing the drive coupler <b>185</b> to return to a starting position. The distal tip <b>901</b> of the hypodermic needle <b>902</b> can be driven to a precise penetration depth within the tissue <b>903</b> of the patient using any of the methods or devices discussed above with regard to achieving a desired penetration depth using a controllable driver or any other suitable driver.
0422In another embodiment, the agent injection module <b>915</b> is loaded into a ratchet advance mechanism that includes an adjustable or movable distal stage or surface (not shown) that positions the agent injection <b>915</b> module relative to a skin contact point or surface <b>942</b>. In this way, an agent delivery module <b>915</b> having a penetration stroke of predetermined fixed length, such as shown in <figref idref="DRAWINGS">FIGS. 99-101</figref>; reaches a pre-settable penetration depth. The movable stage remains stationary during a drug delivery cycle. In a variation of this embodiment, the moveable stage motion may be coordinated with a withdrawal of the hypodermic needle <b>902</b> to further control the depth of drug delivery.
0423In another embodiment, the latch springs <b>938</b> shown in the agent injection module <b>915</b> of <figref idref="DRAWINGS">FIGS. 99-101</figref> may be molded with a number of ratchet teeth (not shown) that engage the proximal end <b>932</b> of the collapsible canister <b>917</b> as it passes by on the penetration stroke. If the predetermined depth of penetration is less than the full stroke, the intermediate teeth retain the proximal end <b>932</b> of the collapsible canister <b>917</b> during the withdrawal stroke in order to collapse the main chamber <b>918</b> of the collapsible canister <b>917</b> and dispense the drug or agent <b>913</b> as discussed above.
0424In yet another embodiment, drive fingers (not shown) are secured to an actuation mechanism (not shown) and replace the latch springs <b>938</b>. The actuation mechanism is driven electronically in conjunction with the controllable driver by a processor or controller, such as the processor <b>60</b> discussed above, to control the rate and amount of drug delivered anywhere in the actuation cycle. This embodiment allows the delivery of medication during the actuation cycle as well as the retraction cycle.
0425Inherent in the position and velocity control system of a controllable driver is the ability to precisely define the position in space of the hypodermic needle <b>902</b>, allowing finite placement of the hypodermic needle in the skin <b>903</b> for injection of drugs, vaccines or the like. Drug delivery can be discrete or continuous depending on the need.
0426<figref idref="DRAWINGS">FIGS. 102-106</figref> illustrate an embodiment of a cartridge <b>945</b> that may be used for sampling that has both a lancet cartridge body <b>946</b> and an sampling cartridge body <b>947</b>. The sampling cartridge body <b>947</b> includes a plurality of sampling module portions <b>948</b> that are disposed radially from a longitudinal axis <b>949</b> of the sampling cartridge body <b>947</b>. The lancet cartridge body <b>946</b> includes a plurality of lancet module portions <b>950</b> that have a lancet channel <b>951</b> with a lancet <b>183</b> slidably disposed therein. The lancet module portions <b>950</b> are disposed radially from a longitudinal axis <b>952</b> of the lancet cartridge body <b>946</b>.
0427The sampling cartridge body <b>947</b> and lancet cartridge body <b>946</b> are disposed adjacent each other in an operative configuration such that each lancet module portion <b>950</b> can be readily aligned in a functional arrangement with each sampling module portion <b>948</b>. In the embodiment shown in <figref idref="DRAWINGS">FIGS. 102-106</figref>, the sampling cartridge body <b>947</b> is rotatable with respect to the lancet cartridge body <b>946</b> in order to align any lancet channel <b>951</b> and corresponding lancet <b>183</b> of the lancet cartridge body <b>946</b> with any of the lancet channels <b>953</b> of the sampling module portions <b>948</b> of the sampling cartridge body <b>947</b>. The operative configuration of the relative location and rotatable coupling of the sampling cartridge body <b>947</b> and lancet cartridge body <b>946</b> allow ready alignment of lancet channels <b>951</b> and <b>953</b> in order to achieve a functional arrangement of a particular lancet module portion <b>950</b> and sampling module portion <b>948</b>. For the embodiment shown, the relative motion used to align the particular lancet module portions <b>950</b> and sampling module portions <b>948</b> is confined to a single degree of freedom via relative rotation.
0428The ability of the cartridge <b>945</b> to align the various sampling module <b>948</b> portions and lancet module portions <b>950</b> allows the user to use a single lancet <b>183</b> of a particular lancet module portion <b>950</b> with multiple sampling module portions <b>948</b> of the sampling cartridge body <b>947</b>. In addition, multiple different lancets <b>183</b> of lancet module portions <b>950</b> could be used to obtain a sample in a single sampling module portion <b>948</b> of the sampling cartridge body <b>947</b> if a fresh unused lancet <b>183</b> is required or desired for each lancing action and previous lancing cycles have been unsuccessful in obtaining a usable sample.
0429<figref idref="DRAWINGS">FIG. 102</figref> shows an exploded view in perspective of the cartridge <b>945</b>, which has a proximal end portion <b>954</b> and a distal end portion <b>955</b>. The lancet cartridge body <b>946</b> is disposed at the proximal end portion <b>954</b> of the cartridge <b>945</b> and has a plurality of lancet module portions <b>950</b>, such as the lancet module portion <b>950</b> shown in <figref idref="DRAWINGS">FIG. 103</figref>. Each lancet module portion <b>950</b> has a lancet channel <b>951</b> with a lancet <b>183</b> slidably disposed within the lancet channel <b>951</b>. The lancet channels <b>951</b> are substantially parallel to the longitudinal axis <b>952</b> of the lancet cartridge body <b>946</b>. The lancets <b>183</b> shown have a drive head <b>198</b>, shaft portion <b>201</b> and sharpened tip <b>196</b>. The drive head <b>198</b> of the lancets are configured to couple to a drive coupler (not shown), such as the drive coupler <b>185</b> discussed above.
0430The lancets <b>183</b> are free to slide in the respective lancet channels <b>951</b> and are nominally disposed with the sharpened tip <b>196</b> withdrawn into the lancet channel <b>951</b> to protect the tip <b>196</b> and allow relative rotational motion between the lancet cartridge body <b>946</b> and the sampling cartridge body <b>947</b> as shown by arrow <b>956</b> and arrow <b>957</b> in <figref idref="DRAWINGS">FIG. 102</figref>. The radial center of each lancet channel <b>951</b> is disposed a fixed, known radial distance from the longitudinal axis <b>952</b> of the lancet cartridge body <b>946</b> and a longitudinal axis <b>958</b> of the cartridge <b>945</b>. By disposing each lancet channel <b>951</b> a fixed known radial distance from the longitudinal axes <b>952</b> and <b>958</b> of the lancet cartridge body <b>946</b> and cartridge <b>945</b>, the lancet channels <b>951</b> can then be readily and repeatably aligned in a functional arrangement with lancet channels <b>953</b> of the sampling cartridge body <b>947</b>. The lancet cartridge body <b>946</b> rotates about a removable pivot shaft <b>959</b> which has a longitudinal axis <b>960</b> that is coaxial with the longitudinal axes <b>952</b> and <b>950</b> of the lancet cartridge body <b>946</b> and cartridge <b>945</b>.
0431The sampling cartridge body <b>947</b> is disposed at the distal end portion <b>955</b> of the cartridge and has a plurality of sampling module portions <b>948</b> disposed radially about the longitudinal axis <b>949</b> of the sampling cartridge body <b>947</b>. The longitudinal axis <b>949</b> of the sampling cartridge body <b>947</b> is coaxial with the longitudinal axes <b>952</b>, <b>958</b> and <b>960</b> of the lancet cartridge body <b>946</b>, cartridge <b>945</b> and pivot shaft <b>959</b>. The sampling cartridge body <b>947</b> may also rotate about the pivot shaft <b>959</b>. In order to achieve precise relative motion between the lancet cartridge body <b>946</b> and the sampling cartridge body <b>947</b>, one or both of the cartridge bodies <b>946</b> and <b>947</b> must be rotatable about the pivot shaft <b>959</b>, however, it is not necessary for both to be rotatable about the pivot shaft <b>959</b>, that is, one of the cartridge bodies <b>946</b> and <b>947</b> may be secured, permanently or removably, to the pivot shaft <b>959</b>.
0432The sampling cartridge body <b>947</b> includes a base <b>961</b> and a cover sheet <b>962</b> that covers a proximal surface <b>963</b> of the base forming a fluid tight seal. Each sampling module portion <b>948</b> of the sampling cartridge body <b>947</b>, such as the sampling module portion <b>948</b> shown in <figref idref="DRAWINGS">FIG. 104</figref> (without the cover sheet for clarity of illustration), has a sample reservoir <b>964</b> and a lancet channel <b>953</b>. The sample reservoir <b>964</b> has a vent <b>965</b> at an outward radial end that allows the sample reservoir <b>964</b> to readily fill with a fluid sample. The sample reservoir <b>964</b> is in fluid communication with the respective lancet channel <b>953</b> which extends substantially parallel to the longitudinal axis <b>949</b> of the sampling cartridge body <b>947</b>. The lancet channel <b>953</b> is disposed at the inward radial end of the sample reservoir <b>964</b>.
0433The lancet channels <b>953</b> of the sample cartridge body <b>947</b> allow passage of the lancet <b>183</b> and also function as a sample flow channel <b>966</b> extending from an inlet port <b>967</b> of the lancet channel <b>953</b>, shown in <figref idref="DRAWINGS">FIG. 106</figref>, to the sample reservoir <b>964</b>. Note that a proximal surface <b>968</b> of the cover sheet <b>962</b> is spatially separated from a distal surface <b>969</b> of the lancet cartridge body <b>946</b> at the lancet channel site in order to prevent any fluid sample from being drawn by capillary action into the lancet channels <b>951</b> of the lancet cartridge body <b>946</b>. The spatial separation of the proximal surface <b>968</b> of the cover sheet <b>962</b> from the distal surface <b>969</b> of the lancet cartridge body <b>946</b> is achieved with a boss <b>970</b> between the two surfaces <b>968</b> and <b>969</b> that is formed into the distal surface <b>969</b> of the lancet cartridge body as shown in <figref idref="DRAWINGS">FIG. 105</figref>.
0434The sample reservoirs <b>964</b> of the sampling cartridge body <b>947</b> may include any of the sample detection sensors, testing sensors, sensor contacts or the like discussed above with regard to other sampling module embodiments. The cover sheet <b>962</b> may be formed of PMMA and have conductors, sensors or sensor contacts formed on a surface thereof. It may also be desirable to have the cover sheet <b>962</b> made from a transparent or translucent material in order to use optical sensing or testing methods for samples obtained in the sample reservoirs. In the embodiment shown, the outer radial location of at least a portion of the sample reservoirs <b>964</b> of the sampling cartridge body <b>967</b> is beyond an outer radial dimension of the lancet cartridge body <b>946</b>. Thus, an optical detector or sensor <b>971</b>, such as shown in <figref idref="DRAWINGS">FIG. 105</figref>, can detect or test a sample disposed within a sample reservoir <b>964</b> by transmitting an optical signal through the cover sheet <b>962</b> and receiving an optical signal from the sample.
0435The cartridge bodies <b>946</b> and <b>947</b> may have features, dimensions or materials that are the same as, or similar to, features, dimensions or materials of the sampling cartridges and lancet cartridges, or any components thereof, discussed above. The module portions <b>948</b> and <b>950</b> may also have features, dimensions or materials that are the same as, or similar to, features, dimensions or materials of the lancet or sampling modules, or any components thereof, discussed above. In addition, the cartridge <b>945</b> can be coupled to, or positioned adjacent any of the drivers discussed above, or any other suitable driver, in an operative configuration whereby the lancets of the lancet cartridge body can be selectively driven in a lancing cycle. Although the embodiment shown in <figref idref="DRAWINGS">FIGS. 102-106</figref> allows for alignment of various sampling module portions <b>948</b> and lancet module portions <b>950</b> with relative rotational movement, other embodiments that function similarly are also contemplated. For example, lancet module portions, sampling module portions or both, could be arranged in a two dimensional array with relative x-y motion being used to align the module portions in a functional arrangement. Such relative x-y motion could be accomplished with position sensors and servo motors in such an alternative embodiment order to achieve the alignment.
0436As discussed above for <figref idref="DRAWINGS">FIGS. 46-48</figref> and illustrated generically in <figref idref="DRAWINGS">FIG. 107</figref>, one embodiment of the present invention may comprise a lancet driver <b>1000</b> configured to exert a driving force on a lancet <b>1002</b> and used on a tissue site <b>234</b> as seen in <figref idref="DRAWINGS">FIG. 37</figref>. The lancet driver <b>1000</b> uses a drive force generator <b>1004</b> such as, but not limited to, the device of <figref idref="DRAWINGS">FIG. 4</figref>, a linear voice coil device <b>294</b>, or rotary voice coil device <b>325</b> to advance or actuate the lancet along a path <b>1006</b> into a tissue site <b>234</b> (as similarly illustrated in <figref idref="DRAWINGS">FIGS. 30-41</figref>). It should be understood that a variety of drive force generators may be used such as voice coil drive force generators, solenoid drive force generators, or similar drive force generators. Spring-based drive force generators or other non-electrical force generators may be used in certain alternative embodiments where the force generators can deliver the lancet at desired speeds while having mechanical dampers, stops, or other apparatus to provide the desired deceleration that minimizes oscillation of the lancet (see <figref idref="DRAWINGS">FIG. 68</figref>). Additionally, as seen in <figref idref="DRAWINGS">FIG. 47</figref>, the coil does not need to be fully surrounded by a magnetically active region.
0437A sensor <b>1008</b> may be used to detect lancet position along the path <b>1006</b> during the lancing cycle. A suitable sensor may include, but is not limited to, the position sensing mechanism <b>74</b>, position sensor <b>191</b>, optical position sensor <b>319</b>, optical position sensor <b>357</b>, or the like. A suitable sensor may also include those that can provide lancet position and sufficient sensor resolution to provide lancet velocity along the path <b>1006</b>. As discussed above, the sensor <b>1008</b> may be positioned such as to detect the position of a drive element that corresponds to or actuates the lancet (as shown in <figref idref="DRAWINGS">FIG. 21</figref>, element <b>219</b>). The sensor <b>1008</b> may also be positioned to detect the position of the lancet itself (as shown in <figref idref="DRAWINGS">FIG. 46</figref>, elements <b>296</b> and <b>319</b>).
0438Referring now to <figref idref="DRAWINGS">FIG. 108</figref>, a processor <b>1020</b> similar to that shown in <figref idref="DRAWINGS">FIG. 12</figref> (processor <b>60</b>) or others may be used to support a closed feedback control loop <b>1022</b> as indicated by the arrows, to provide lancet control. The driver <b>1000</b> of <figref idref="DRAWINGS">FIG. 107</figref> may also include a controller or processor (not shown). The control of lancet <b>1002</b> may involve lancet position control and may also include lancet velocity control to follow a selectable lancet velocity profile or waveform as indicated in <figref idref="DRAWINGS">FIG. 12</figref>. In most embodiments, the processor <b>1020</b> will be coupled to the drive force generator <b>1004</b> wherein the processor will signal or actuate the generator to drive the lancet at various velocities.
0439As discussed in regards to <figref idref="DRAWINGS">FIGS. 6-9</figref>, <b>16</b>-<b>17</b>, and <b>42</b>, the lancet velocity profile or waveform may be designed to drive the lancet to minimize pain to a patient while also providing sufficient body fluid or blood yield for sampling purposes. The velocity profile, specifically in electrically powered force generators, may correspond to the duration and amount of electric current applied to the electrically powered force generators. The velocity profile may also provide for programmable deceleration profile of the lancet velocity to provide lancet stopping in the tissue site without a sudden hard stop that increases pain to the patient. In specific embodiments, the lancet velocity profile may used with suitable drive force generators to provide lancet velocities between about 0.8 to 20.0 meter per second on the penetration stroke and lancet velocities of 0.5 meters per second to less than about 0.02 meters per second on the withdrawal stroke.
0440Referring to <figref idref="DRAWINGS">FIGS. 10</figref>, <b>11</b>, and <b>107</b>, the lancet <b>1002</b> may be driven along a path towards the tissue site <b>324</b>, into the tissue site <b>324</b>, and then withdrawn from the tissue site <b>324</b> (see <figref idref="DRAWINGS">FIG. 10</figref>) to draw body fluid into a wound channel created by the lancet (see <figref idref="DRAWINGS">FIG. 11</figref>). Although not limited in this manner, the lancet may follow a one directional linear path into the tissue site and follow the same linear path out of the tissue site.
0441Referring to <figref idref="DRAWINGS">FIG. 109</figref>, a voice coil drive force generator <b>1030</b> is shown with a mechanical damper <b>1032</b> for providing a controlled deceleration as the lancet reaches a desired displacement away from the driver. This mechanical damper <b>1032</b> may be similar in concept to one discussed with <figref idref="DRAWINGS">FIG. 68</figref>, except that the drive portion of the device is electrically actuated. Other suitable mechanical dampers may include dashpots using air, liquid or gel, electro-dynamic using eddy currents induced into a conductor with permanent or electromagnets, mechanical stops comprising polymer or elastomeric material minimizing oscillations, or a mechanical catch that holds the lancet in position until it is desired to release the lancet for the withdrawal stroke or some combination of these dampers. It should also be understood that the damper <b>1032</b> may be disposed in a variety of locations on the lancet driver including coupling to the lancet or to the drive components of force generator <b>1030</b> (shown in phantom).
0442<figref idref="DRAWINGS">FIGS. 110A and 110B</figref> show embodiments of the present invention having a drive force generator <b>1004</b> and a multiple lancet device <b>1040</b> such as a bandolier described in <figref idref="DRAWINGS">FIGS. 96 and 102</figref>. The drive force generator <b>1004</b> may be, but is not limited to, a voice coil force generator for driving lancet <b>1042</b> (<figref idref="DRAWINGS">FIG. 110B</figref>). The multiple lancet device or cartridge <b>1040</b> is similar to the embodiment of <figref idref="DRAWINGS">FIG. 93</figref> and allows the user to have multiple lancet events without reloading the driver with a new lancet for each lancing event. This reduces the number of steps that a patient performs and thus will reduce the barrier to more frequent blood glucose testing.
0443Referring now to <figref idref="DRAWINGS">FIG. 111</figref>, in one embodiment of the present invention, a human interface <b>1051</b>, such as but not limited to an LCD screen, may be included with the lancet driver <b>1050</b>. It should understood the human interface may provide human readable output, human recognizable output (such as flashing indicators, icons, or symbols) or possible audio signals. The driver <b>1050</b> may also include buttons under software control such as one button <b>1052</b> for firing or actuating a lancet. A first press may turn on the driver <b>1050</b> and a second press may fire or actuate the lancet. In one specific embodiment, present invention may use two processors <b>1054</b> and <b>1056</b> (shown in phantom), the actuator processor <b>1054</b> that is fast and high power and the LCD/Human Interface (HI) processor <b>1056</b> that is low power and slower. The HI processor <b>1056</b> is in sleep mode and runs intermittently to conserve power. The HI processor <b>1056</b> controls the power to the actuator processor <b>1054</b> as needed. It also is a watchdog timer for the high-speed processor go that it will not remain on for long periods of time and drain the batteries. The communications between these two processors <b>1054</b> and <b>1056</b> uses a few lines and may be, but not necessarily, serial in nature. The communications may use a variety of interface standard such as, but not limited to, RS-232, SPI, I<sup>2</sup>C or a proprietary scheme. The present embodiment may include at least one interface wire and ground. In some embodiment, the human interface may provide a variety of outputs such as, but not limited to, stick or lancing event number, lancets remaining, time, alarm, profile information, force in last stick/lancing event, or last stick/lancing event time.
0444Referring now to <figref idref="DRAWINGS">FIG. 112</figref>, one embodiment of the driver <b>1050</b> may include at least one or a plurality of LED lights <b>1060</b> to provide alarms or other information to the user. <figref idref="DRAWINGS">FIG. 113</figref> show a driver having an audio or sound generator for providing alarm or other information to the user. <figref idref="DRAWINGS">FIG. 114</figref> shows the driver with a data interface device <b>1064</b> (shown in phantom) for allowing data communications with another support device such as, but not limited to, a computer, PDA, a computer network, a temporary storage device, other device for receiving data from the lancet driver. <figref idref="DRAWINGS">FIG. 115</figref> shows a further embodiment where human interface <b>1051</b> is on a separate or separable device that is coupled to the driver <b>1050</b> to provide the human interface feature. It should be understood of course, that the human interface may any of those described herein, such as those providing video, audio, other signals.
0445In one embodiment, the present invention may include one or more buttons so that the user may control the Human Interface. One or more output display devices such as, but not limited to, individual LED's, arrays of LED's, LCD panels, buzzers, beepers, vibration, may be used by the user to provide feedback. External communications with other data interchange devices like personal computers, modems, personal data assistants, etc. may be provided.
0446One function of the human interface is to allow the user to initiate the cycle of the actuator. To allow user input, the human interface may further include but is not limited to, at least one pushbutton, a touch pad independent of the display device, or a touch sensitive screen on the LCD display. Additionally the interface may allow for other functionality such as an interface that allows the user to control the sampling/pain interface setting, or a device that sense whether there is a lancet loaded and ready for use, multiple sampling/pain interface protocols that the user can preset for sampling different areas of the body such as the finger versus the forearm. Additionally, a real time clock and one or more alarms the user can set for reminders of when the next stick is needed. The alarms may be individually settable with a master enable/disable that affects all alarms to easily suppress them in restaurants and theaters or other situations where an alarm would be offensive. The alarms can be set for blinking light, sound, and vibration or off. An enhancement would allow an alarm to be enabled for one or more days. This way the users schedule could be accommodated. For instance an alarm might be set for 10:00 AM for Monday thru Friday, but turned off Saturday and Sunday in preference to an alarm for 11:00 AM on those days.
0447In some embodiments, the HI may have a data recorder function. It may accumulate various data for feedback to the user or another data collection device or network. Some examples of types of data that might be recorded include: the number of lancets used, the number of sticks for this day, the time and date of the last n lancet events, or the interval between alarm and stick, amount of force of the stick, user setting, battery status, etc. The HI processor may pass the information to other devices through commonly available data interface devices or interfaces <b>1064</b>, or optionally a proprietary interface. Some common data interface devices or interfaces include but are not limited to: Serial RS-232, modem interface, USB, HPNA, Ethernet, optical interface, IRDA, RF interface, Bluetooth interface, cellular telephone interface, 2 way pager interface, a parallel port interface standard, near field magnetic coupling, or other RF network transceiver. One use of these interfaces is to move the data to somewhere else so that the user, a doctor, nurse or other medical technician may analyze it. The interfaces may be compatible with personal computers, modems, PDAs or existing computer networks.
0448While the invention has been described and illustrated with reference to certain particular embodiments thereof, those skilled in the art will appreciate that various adaptations, changes, modifications, substitutions, deletions, or additions of procedures and protocols may be made without departing from the spirit and scope of the invention. For example, the positioning of the LCD screen for the human interface may be varied so as to provide the best location for ergonomic use. The human interface may be a voice system that uses words to describe status or alarms related to device usage. Expected variations or differences in the results are contemplated in accordance with the objects and practices of the present invention. It is intended, therefore, that the invention be defined by the scope of the claims which follow and that such claims be interpreted as broadly as is reasonable.
Contents5
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| Reference capture on IDSRCAP | RCAP | |
| Information Disclosure Statement (IDS) FiledM844 | M844 | |
| Information Disclosure Statement (IDS) FiledWIDS | WIDS | |
| Information Disclosure Statement consideredIDSC | IDSC | |
| Reference capture on IDSRCAP | RCAP | |
| Information Disclosure Statement (IDS) FiledM844 | M844 | |
| Information Disclosure Statement (IDS) FiledWIDS | WIDS | |
| Electronic ReviewELC_RVW | ELC_RVW | |
| Email NotificationEML_NTF | EML_NTF | |
| Mail Non-Final RejectionNon-final rejectionMCTNF | MCTNF | |
| Information Disclosure Statement consideredIDSC | IDSC | |
| Reference capture on IDSRCAP | RCAP | |
| Information Disclosure Statement (IDS) FiledM844 | M844 | |
| Information Disclosure Statement (IDS) FiledWIDS | WIDS | |
| Non-Final RejectionNon-final rejectionCTNF | CTNF | |
| Information Disclosure Statement consideredIDSC | IDSC | |
| Reference capture on IDSRCAP | RCAP | |
| Information Disclosure Statement (IDS) FiledM844 | M844 | |
| Information Disclosure Statement (IDS) FiledWIDS | WIDS | |
| Date Forwarded to ExaminerFWDX | FWDX | |
| Information Disclosure Statement consideredIDSC | IDSC | |
| Information Disclosure Statement (IDS) FiledWIDS | WIDS | |
| Reference capture on IDSRCAP | RCAP | |
| Information Disclosure Statement (IDS) FiledM844 | M844 | |
| Response to Election / Restriction FiledELC. | ELC. | |
| Electronic ReviewELC_RVW | ELC_RVW | |
| Email NotificationEML_NTF | EML_NTF | |
| Mail Restriction RequirementMCTRS | MCTRS | |
| Restriction/Election RequirementCTRS | CTRS | |
| Information Disclosure Statement consideredIDSC | IDSC | |
| Reference capture on IDSRCAP | RCAP | |
| Information Disclosure Statement (IDS) FiledM844 | M844 | |
| Information Disclosure Statement (IDS) FiledWIDS | WIDS | |
| Information Disclosure Statement consideredIDSC | IDSC | |
| Reference capture on IDSRCAP | RCAP | |
| Information Disclosure Statement (IDS) FiledM844 | M844 | |
| Information Disclosure Statement (IDS) FiledWIDS | WIDS | |
| Information Disclosure Statement consideredIDSC | IDSC | |
| Reference capture on IDSRCAP | RCAP | |
| Information Disclosure Statement (IDS) FiledM844 | M844 | |
| Information Disclosure Statement (IDS) FiledWIDS | WIDS | |
| Information Disclosure Statement consideredIDSC | IDSC | |
| Reference capture on IDSRCAP | RCAP | |
| Information Disclosure Statement (IDS) FiledM844 | M844 | |
| Information Disclosure Statement (IDS) FiledWIDS | WIDS | |
| Information Disclosure Statement consideredIDSC | IDSC | |
| Reference capture on IDSRCAP | RCAP | |
| Information Disclosure Statement (IDS) FiledM844 | M844 | |
| Information Disclosure Statement (IDS) FiledWIDS | WIDS | |
| Information Disclosure Statement consideredIDSC | IDSC | |
| Reference capture on IDSRCAP | RCAP | |
| Information Disclosure Statement (IDS) FiledM844 | M844 | |
| Information Disclosure Statement (IDS) FiledWIDS | WIDS | |
| Information Disclosure Statement consideredIDSC | IDSC | |
| Information Disclosure Statement (IDS) FiledM844 | M844 | |
| Information Disclosure Statement (IDS) FiledWIDS | WIDS | |
| Information Disclosure Statement consideredIDSC | IDSC | |
| Information Disclosure Statement (IDS) FiledM844 | M844 | |
| Information Disclosure Statement (IDS) FiledWIDS | WIDS | |
| Information Disclosure Statement consideredIDSC | IDSC | |
| Reference capture on IDSRCAP | RCAP | |
| Information Disclosure Statement (IDS) FiledM844 | M844 | |
| Information Disclosure Statement (IDS) FiledWIDS | WIDS | |
| Information Disclosure Statement consideredIDSC | IDSC | |
| Information Disclosure Statement consideredIDSC | IDSC | |
| Reference capture on IDSRCAP | RCAP | |
| Information Disclosure Statement (IDS) FiledM844 | M844 | |
| Information Disclosure Statement (IDS) FiledM844 | M844 | |
| Information Disclosure Statement (IDS) FiledWIDS | WIDS | |
| Information Disclosure Statement (IDS) FiledWIDS | WIDS | |
| Information Disclosure Statement consideredIDSC | IDSC | |
| Reference capture on IDSRCAP | RCAP | |
| Information Disclosure Statement (IDS) FiledM844 | M844 | |
| Information Disclosure Statement (IDS) FiledWIDS | WIDS | |
| Information Disclosure Statement consideredIDSC | IDSC | |
| Reference capture on IDSRCAP | RCAP | |
| Information Disclosure Statement (IDS) FiledM844 | M844 |
13 legal events, as the office reported them to INPADOC
Over the term
Point at a mark for the eventEvents
| Event | Code | |
|---|---|---|
| Lapsed due to failure to pay maintenance feeLapsedFP | FP | |
| Lapse for failure to pay maintenance feesLapsedPATENT EXPIRED FOR FAILURE TO PAY MAINTENANCE FEES (ORIGINAL EVENT CODE: EXP.); ENTITY STATUS OF PATENT OWNER: LARGE ENTITYLAPS | LAPS | |
| Information on status: patent discontinuationPATENT EXPIRED DUE TO NONPAYMENT OF MAINTENANCE FEES UNDER 37 CFR 1.362STCH | STCH | |
| Fee payment procedureMAINTENANCE FEE REMINDER MAILED (ORIGINAL EVENT CODE: REM.); ENTITY STATUS OF PATENT OWNER: LARGE ENTITYFEPP | FEPP | |
| Fee paymentFPAY | FPAY | |
| AssignmentAS | AS | |
| Information on status: patent grantGrantedPATENTED CASESTCF | STCF | |
| AssignmentAS | AS | |
| AssignmentAS | AS | |
| AssignmentAS | AS | |
| AssignmentAS | AS | |
| AssignmentAS | AS | |
| AssignmentAS | AS |
Numbers
- Publication
- 8157748
- Application
- 11972021
Titles
- English
- Methods and apparatus for lancet actuation
Patent term adjustment
- A delay
- +695 daysthe office missed an examination deadline
- B delay
- +463 dayspendency past three years
- Overlap
- −66 daysdelays counted once
- Applicant delay
- −270 days
- Net adjustment
- 822 days
Classification
- CPC, 46
- G01N33/557
- A61B5/14532
- A61B5/14546
- A61B5/151
- A61B5/15146
- A61B5/15186
- A61B17/32093
- B01L3/5027
- B01L2200/10
- B01L2300/0663
- B01L2300/18
- G01N33/4905
- A61B5/150022
- A61B5/150068
- A61B5/150083
- A61B5/150099
- A61B5/150152
- A61B5/150167
- A61B5/15019
- A61B5/150213
- A61B5/150221
- A61B5/150229
- A61B5/150358
- A61B5/150412
- A61B5/150435
- A61B5/150503
- A61B5/150572
- A61B5/150809
- A61B5/150824
- A61B5/15087
- A61B5/150916
- A61B5/150954
- A61B5/15111
- A61B5/15113
- A61B5/15117
- A61B5/15123
- A61B5/15151
- A61B5/15163
- A61B5/15169
- A61B5/15171
- A61B5/15174
- A61B5/15176
- A61B5/15184
- A61B5/1519
- A61B5/15194
- A61B5/150832
- IPC, 8
- A61B5 15
- A61B5 00
- A61B5 155
- A61B17 14
- A61B17 32
- B01L3 00
- G01N33 49
- G01N33 557